import { execFileSync } from 'node:child_process' import { existsSync, mkdtempSync, realpathSync, rmSync, statSync, writeFileSync } from 'node:fs' import { mkdtemp, writeFile } from 'node:fs/promises' import { tmpdir } from 'node:os' import { basename, dirname, join, relative, resolve } from 'node:path' import { afterEach, describe, expect, it, vi } from 'vitest' import { Context } from '@deepseek-ai/cordis' import { PythonCodeRuntime, hostFrameParseCeiling, readProcessStart, resolvePythonBin } from '../src/index.ts' import { logTruncationMarker } from '../src/protocol.ts' import type { Config } from '../src/index.ts' // Absolute supported interpreter path for shell wrappers. The runtime gives a // child only TMPDIR, so a bare `python3` inside a wrapper would resolve against // /bin/sh's default PATH rather than the caller's selected interpreter. const PYABS = resolvePythonBin('python3') ?? 'python3' import type { CodeBindingFunction, CodeJsonValue, CodeRunResult } from '@deepseek-ai/dsh-code-runtime' /** * Names one `py/` script whose `copyFileSync` must fail, for the partial-staging * case. A real disk-full or missing-asset failure mid-copy cannot be produced * from a test, and the leak only shows when `mkdtempSync` has already succeeded. * * `stagedDirs` records every staging directory THIS test file creates, so the * leak assertions check the exact paths instead of a global tmpdir diff: a * parallel vitest worker running the same prefix could create or remove * `dsh-code-runtime-python-*` directories inside the sampling window, which a * readdir diff would misattribute to this test. `boot-write-failure.spec.ts` * records the same race and solves it with argv-based identity; recording the * mkdtempSync results is the fs-mock equivalent. */ const { failNextCopyOf, stagedDirs, tempDirs, tempFiles } = vi.hoisted(() => ({ failNextCopyOf: { value: undefined as string | undefined }, stagedDirs: [] as string[], // Test-created temp dirs/files, registered by the helpers below and removed // after each test: a suite run over real python3 subprocesses must not // permanently accumulate `dsh-*` fixtures in the shared tmpdir (the runtime // cleans its own per-run staging dir; these are the stubs and wrappers the // tests themselves build). tempDirs: [] as string[], tempFiles: [] as string[], })) vi.mock('node:fs', async (importOriginal) => { const actual = await importOriginal() return { ...actual, copyFileSync(source: string, destination: string): void { if (failNextCopyOf.value !== undefined && basename(source) === failNextCopyOf.value) { failNextCopyOf.value = undefined throw Object.assign(new Error('simulated ENOSPC on copy'), { code: 'ENOSPC' }) } actual.copyFileSync(source, destination) }, mkdtempSync(prefix: string): string { const dir = actual.mkdtempSync(prefix) if (basename(prefix).startsWith('dsh-code-runtime-python-')) stagedDirs.push(dir) return dir }, } }) /** * Integration suite over REAL python3 subprocesses (no subprocess mocks — it is * cheap and local, per docs/testing.md's real-over-mock policy; the only mock is * `node:fs.copyFileSync` for the staging-failure cases). Each test builds a fresh * runtime so budgets can be tuned per case. */ async function setup(config: Config = {}) { const ctx = new Context() const fiber = await ctx.plugin(PythonCodeRuntime, config) const runtime = ctx.codeRuntime as PythonCodeRuntime return { ctx, fiber, runtime } } /** Convenience: one namespace `tools` with the given functions. */ function tools(functions: Record) { return [{ global: 'tools', functions }] } /** Create a test temp dir registered for afterEach removal. */ async function makeTempDir(prefix: string): Promise { const dir = await mkdtemp(join(tmpdir(), prefix)) tempDirs.push(dir) return dir } /** Synchronous variant of {@link makeTempDir} for the PATH-stub fixtures. */ function makeTempDirSync(prefix: string): string { const dir = mkdtempSync(join(tmpdir(), prefix)) tempDirs.push(dir) return dir } // Remove every fixture this file created, so repeated runs do not accumulate // `dsh-*` directories and wrappers in the shared tmpdir. afterEach(() => { for (const dir of tempDirs.splice(0)) rmSync(dir, { recursive: true, force: true }) for (const file of tempFiles.splice(0)) rmSync(file, { force: true }) }) describe('PythonCodeRuntime — seam descriptors and misuse', () => { it('registers the seam descriptors', async () => { const { runtime } = await setup() expect(runtime.language).toBe('python') expect(runtime.isolation).toBe('process') }) it('rejects non-positive config as seam misuse', async () => { const ctx = new Context() await expect(ctx.plugin(PythonCodeRuntime, { cpuSeconds: 0 })) .rejects.toThrow(/cpuSeconds must be a positive number/) await expect(ctx.plugin(PythonCodeRuntime, { maxWallMs: -1 })) .rejects.toThrow(/maxWallMs must be a positive number/) }) it('rejects a non-integer cpuSeconds at load (setrlimit needs an int)', async () => { const ctx = new Context() await expect(ctx.plugin(PythonCodeRuntime, { cpuSeconds: 1.5 })) .rejects.toThrow(/cpuSeconds must be a positive integer, got 1.5/) }) it('rejects a non-integer byte budget at load (the child int()-truncates it)', async () => { // maxLogBytes/maxValueBytes cross to the child, which reads them through // int(...): a float would floor there while the host meters the fraction, so // the two sides would enforce different public config. Reject at load. const ctxLog = new Context() await expect(ctxLog.plugin(PythonCodeRuntime, { maxLogBytes: 3.5 })) .rejects.toThrow(/maxLogBytes must be a positive integer/) const ctxValue = new Context() await expect(ctxValue.plugin(PythonCodeRuntime, { maxValueBytes: 1024.5 })) .rejects.toThrow(/maxValueBytes must be a positive integer/) }) it('rejects finite numeric config that cannot cross as an exact rlimit integer', async () => { // `Number.isFinite` and `Number.isInteger` both admit values that cannot // round-trip. `addressSpaceMb: 1e308` overflows to `Infinity` once multiplied // by 1 MiB, and `encodeJsonPlain` renders that as `null`, so the child gets no // limit at all; `cpuSeconds: 1e100` clears `Number.isInteger` while sitting // far past the safe range, so `setrlimit` receives a different number than was // configured. Both used to end every run in a bootstrap exception instead of // failing at load, where a self-contained configuration error belongs. const ctx = new Context() await expect(ctx.plugin(PythonCodeRuntime, { addressSpaceMb: 1e308 })) .rejects.toThrow(/addressSpaceMb must be at most \d+ .*exact integer/) await expect(ctx.plugin(PythonCodeRuntime, { cpuSeconds: 1e100 })) .rejects.toThrow(/cpuSeconds must be at most \d+ .*exact integers/) // The boundary values still load: the bound rejects what cannot be encoded, // not everything large. const okMb = await ctx.plugin(PythonCodeRuntime, { addressSpaceMb: Math.floor(Number.MAX_SAFE_INTEGER / (1024 * 1024)) }) await okMb.dispose() const okCpu = await ctx.plugin(PythonCodeRuntime, { cpuSeconds: Number.MAX_SAFE_INTEGER - 1 }) await okCpu.dispose() }) it('rejects an output cap whose payload could not cross the frame ceiling', async () => { // The caps budget a payload that must arrive inside ONE fd-3 frame, and the // 64 MiB frame parse cap is fixed. A larger cap is unsatisfiable rather // than generous: a completion the cap admits arrives as an over-ceiling // frame and fails the run as `worker-exit`, inverting the `output-limit` // the cap describes. Both budgets are metered in already-escaped serialized // bytes, so a payload occupies at most `cap + envelope` on the wire; the // bound is `parse-cap - envelope`, not `(ceiling - envelope) / 6` (that // divided in escape expansion the charge already counts). The receive path // rejects raw frames past the 64 MiB parse cap (the run settles as a // worker-exit), so a budget above it would admit a config whose honest // child frames the host then rejects. const admissible = 64 * 1024 * 1024 - 64 const ctx = new Context() await expect(ctx.plugin(PythonCodeRuntime, { maxLogBytes: admissible + 1 })) .rejects.toThrow(/maxLogBytes must not exceed 67108800/) await expect(ctx.plugin(PythonCodeRuntime, { maxValueBytes: admissible + 1 })) .rejects.toThrow(/maxValueBytes must not exceed 67108800/) // The boundary value itself loads: the bound is the largest cap a frame can // still carry, not one below it. It needs an address space large enough to // clear the separate maxValueBytes/addressSpaceMb worst-case gate (the cap // times the 12x Unicode expansion must fit), so this pairs it with a 4 GiB // addressSpaceMb — the two load-time bounds are independent. const boundary = await ctx.plugin(PythonCodeRuntime, { maxValueBytes: admissible, addressSpaceMb: 4096 }) await boundary.dispose() }) it('rejects a completion budget whose frame a constrained host heap cannot safely parse', async () => { // The load gate bounds the CHILD's build-and-encode under RLIMIT_AS; it // does not bound the HOST's JSON.parse, which materializes several times a // wide frame's raw bytes in property storage. In a child node with a // 128 MiB old space the heap-derived frame cap is ~7 MiB, so a 50 MiB // budget is rejected at load even though the address-space gate alone // would admit it (50 MiB * 12 = 600 MiB < 1 GiB - 64 MiB). const script = [ "import { Context } from '@deepseek-ai/cordis'", "import { PythonCodeRuntime } from './packages/experimental/code-runtime-python/src/index.ts'", 'const ctx = new Context()', 'try {', ' await ctx.plugin(PythonCodeRuntime, { maxValueBytes: 50 * 1024 * 1024, addressSpaceMb: 1024 })', " console.log('LOADED')", ' process.exit(1)', '} catch (error) {', " console.log('REJECTED:' + (error instanceof Error ? error.message : String(error)))", ' process.exit(0)', '}', ].join('\n') const out = execFileSync(process.execPath, ['--max-old-space-size=128', '--import', 'tsx', '-e', script], { cwd: resolve(import.meta.dirname, '../../../..'), encoding: 'utf8', timeout: 60_000, env: { ...process.env, TSX_TSCONFIG_PATH: resolve(import.meta.dirname, '../../../../tsconfig.json') }, }) expect(out).toContain('REJECTED:') expect(out).toContain('must not exceed') }, 60_000) it('parses a worst-shape frame at the derived cap on a constrained heap', async () => { // The host-heap frame cap must be measured against the WORST parse shape — // a dict of many short unique keys, which forces dictionary-mode property // storage plus interned keys (~6.4x at 3M keys, trending up), not the ~3x // of a repeated-key dict. A child node with a 128 MiB old space (~176 MiB // heap limit) derives a cap of floor((176 - 64) / 16) = 7 MiB; the // subprocess builds a unique-key dict whose frame is AT that cap and // parses it, which must survive. Verified fail-before: with the multiple // at 8 the derived cap doubles to 14 MiB and the same subprocess OOMs // during the parse (plain JS, no tsx — the frame and parse are builtins). const cap = hostFrameParseCeiling(176 * 1024 * 1024) const script = [ `const cap = ${cap}`, // Each entry "k:1," is ~9-12 raw bytes; a few hundred thousand // unique keys put the frame just at the cap. 'const count = Math.floor(cap / 12)', 'const obj = {}', 'for (let i = 0; i < count; i++) obj[`k${i.toString(36)}`] = 1', 'const frame = JSON.stringify(obj)', "if (Buffer.byteLength(frame, 'utf8') > cap) throw new Error('frame over cap: ' + frame.length)", 'JSON.parse(frame)', "console.log('SURVIVED:' + Buffer.byteLength(frame, 'utf8'))", ].join('\n') const out = execFileSync(process.execPath, ['--max-old-space-size=128', '-e', script], { encoding: 'utf8', timeout: 60_000, }) expect(out).toContain('SURVIVED:') }, 60_000) it('rejects a pythonBin that spawn() would throw on, at load', async () => { // Both values pass the string schema and both make `spawn` throw // SYNCHRONOUSLY from inside run() — ERR_INVALID_ARG_VALUE for the empty // path, ERR_INVALID_ARG_TYPE for the NUL — so run() would REJECT instead of // resolving the worker-exit the seam promises for a child that cannot // start. Both are self-contained configuration errors, so they fail here. const ctx = new Context() await expect(ctx.plugin(PythonCodeRuntime, { pythonBin: '' })) .rejects.toThrow(/pythonBin must be a non-empty path without NUL bytes/) await expect(ctx.plugin(PythonCodeRuntime, { pythonBin: 'py\u0000thon3' })) .rejects.toThrow(/pythonBin must be a non-empty path without NUL bytes/) }) it('rejects an explicit pythonBin that is not an executable regular file, at load', async () => { // An explicit path (absolute, or containing a slash) bypasses PATH lookup, // so it must be validated directly: missing, non-executable, or directory // paths are self-contained configuration errors that used to slip through // load and surface only at the first run() as a misleading worker-exit. // The message distinguishes the explicit-path failure from a basename that // simply does not resolve on PATH. const nodePath = await import('node:path') const { writeFileSync, mkdirSync } = await import('node:fs') const dir = makeTempDirSync('dsh-bad-bin-') const notExecutable = nodePath.join(dir, 'not-executable') writeFileSync(notExecutable, '#!/bin/sh\nexit 0\n') // Regular file, but no X bit. const directory = nodePath.join(dir, 'is-a-directory') mkdirSync(directory) try { const missing = new Context() await expect(missing.plugin(PythonCodeRuntime, { pythonBin: nodePath.join(dir, 'missing') })) .rejects.toThrow(/is not an executable regular file/) const noX = new Context() await expect(noX.plugin(PythonCodeRuntime, { pythonBin: notExecutable })) .rejects.toThrow(/is not an executable regular file/) const isDir = new Context() await expect(isDir.plugin(PythonCodeRuntime, { pythonBin: directory })) .rejects.toThrow(/is not an executable regular file/) // A relative explicit path fails the same way, resolved against the host // CWD: `dir` is absolute, so a slash-containing relative form of it is // the dirname prefix plus the file, which does not exist as such. const rel = new Context() await expect(rel.plugin(PythonCodeRuntime, { pythonBin: './definitely-not-there-python' })) .rejects.toThrow(/is not an executable regular file/) } finally { const { rmSync } = await import('node:fs') rmSync(dir, { recursive: true, force: true }) } }) it('rejects a non-CPython, outdated, or probe-failing interpreter at load', async () => { const nonPython = new Context() await expect(nonPython.plugin(PythonCodeRuntime, { pythonBin: '/bin/echo' })) .rejects.toThrow(/did not report a CPython version/) const dir = await mkdtemp(join(tmpdir(), 'dsh-python-probe-')) const oldMajor = join(dir, 'python-old-major') const old = join(dir, 'python-old') const future = join(dir, 'python-future') const pypy = join(dir, 'pypy') const failed = join(dir, 'python-failed') await writeFile(oldMajor, '#!/bin/sh\nprintf \'cpython 2 99 0\\n\'\n', { mode: 0o755 }) await writeFile(old, '#!/bin/sh\nprintf \'cpython 3 9 6\\n\'\n', { mode: 0o755 }) await writeFile(future, '#!/bin/sh\nprintf \'cpython 4 0 0\\n\'\n', { mode: 0o755 }) await writeFile(pypy, '#!/bin/sh\nprintf \'pypy 3 10 0\\n\'\n', { mode: 0o755 }) await writeFile(failed, '#!/bin/sh\nexit 7\n', { mode: 0o755 }) try { expect(resolvePythonBin(relative(process.cwd(), old))).toBe(old) const obsolete = new Context() await expect(obsolete.plugin(PythonCodeRuntime, { pythonBin: oldMajor })) .rejects.toThrow(/must be CPython 3\.10 or newer, got cpython 2\.99\.0/) const outdated = new Context() await expect(outdated.plugin(PythonCodeRuntime, { pythonBin: old })) .rejects.toThrow(/must be CPython 3\.10 or newer, got cpython 3\.9\.6/) const forwardCompatible = new Context() const fiber = await forwardCompatible.plugin(PythonCodeRuntime, { pythonBin: future }) await fiber.dispose() const alternative = new Context() await expect(alternative.plugin(PythonCodeRuntime, { pythonBin: pypy })) .rejects.toThrow(/must be CPython, got pypy/) const probeFailure = new Context() await expect(probeFailure.plugin(PythonCodeRuntime, { pythonBin: failed })) .rejects.toThrow(/failed the CPython version probe/) } finally { rmSync(dir, { recursive: true, force: true }) } }) it('keeps an explicit executable pythonBin working through load and run', async () => { // The same validation that rejects bad explicit paths must admit a good // one: an absolute path to the real interpreter (or a wrapper around it) // is the deployment form the validation exists to serve. const pyAbs = resolvePythonBin('python3') ?? 'python3' const { runtime, fiber } = await setup({ pythonBin: pyAbs, maxWallMs: 30_000 }) const result = await runtime.run({ program: 'return 1', bindings: [] }) expect(result.error).toBeUndefined() expect(result.value).toBe(1) await fiber.dispose() }) it('rejects a binding member accessor that throws, as seam misuse', async () => { // `namespace.functions` is caller-supplied, so its members may come from a // getter or Proxy. Reading one of them inside the fd-3 `data` callback used // to throw OUTSIDE the dispatcher's try and terminate the host; the // validation now snapshots the callables synchronously, so the throw // surfaces as the seam-misuse rejection run() reserves for malformed // bindings — the child is never spawned. const { runtime } = await setup() const exploding = { get explode(): CodeBindingFunction { throw new Error('getter blew up') }, } await expect(runtime.run({ program: 'return 1', bindings: [{ global: 'tools', functions: exploding }], })).rejects.toThrow(/getter blew up/) }) it('snapshots binding callables once, so a getter is read exactly once', async () => { // The snapshot also fixes the key set the boot frame advertises: the child // learns the namespace names from the SAME record dispatch reads, so a // getter whose keys differ between reads cannot desynchronize the two. let reads = 0 const countReads = { get first(): CodeBindingFunction { reads += 1 return async () => 1 }, } const { runtime, fiber } = await setup() const result = await runtime.run({ program: 'return 1', bindings: [{ global: 'tools', functions: countReads }], }) expect(result.error).toBeUndefined() // One read for the validation snapshot; the boot frame and every dispatch // read the snapshot, not the getter. expect(reads).toBe(1) await fiber.dispose() }) it('keeps a __proto__ binding member dispatchable', async () => { // The seam contract treats member names like `__proto__` or `constructor` // as ordinary own properties (null-prototype construction). The binding // snapshot must preserve that: a plain `{}` record would hit the prototype // setter on assignment and drop the member, so the child would never learn // the name and a call to it would fail with KeyError. const { runtime, fiber } = await setup() const result = await runtime.run({ program: 'return await tools["__proto__"]({})', bindings: [{ global: 'tools', functions: { ['__proto__']: async () => 'proto-callable' }, }], }) expect(result.error).toBeUndefined() expect(result.value).toBe('proto-callable') await fiber.dispose() }) it('resolves pythonBin once so a later PATH change cannot switch interpreters', async () => { const firstDir = await mkdtemp(join(tmpdir(), 'dsh-python-first-')) const secondDir = await mkdtemp(join(tmpdir(), 'dsh-python-second-')) const wrapper = (marker: string): string => `#!/bin/sh\nDSH_TEST_PYTHON=${marker}\nexport DSH_TEST_PYTHON\nexec "${PYABS}" "$@"\n` await writeFile(join(firstDir, 'python3'), wrapper('first'), { mode: 0o755 }) await writeFile(join(secondDir, 'python3'), wrapper('second'), { mode: 0o755 }) vi.stubEnv('PATH', firstDir) let fiber: Awaited>['fiber'] | undefined try { const mounted = await setup({ pythonBin: 'python3' }) fiber = mounted.fiber vi.stubEnv('PATH', secondDir) const result = await mounted.runtime.run({ program: 'import os\nreturn os.environ.get("DSH_TEST_PYTHON")', bindings: [], }) expect(result.error).toBeUndefined() expect(result.value).toBe('first') } finally { await fiber?.dispose() vi.unstubAllEnvs() rmSync(firstDir, { recursive: true, force: true }) rmSync(secondDir, { recursive: true, force: true }) } }) it('skips relative PATH entries when resolving a basename pythonBin', async () => { // resolvePythonBin must return an absolute path: a RELATIVE PATH entry // ('.' here) would otherwise resolve the basename against the host CWD. // This run's CWD holds no executable named python3, so both the relative // skip and the accessSync-miss fall through to the absolute entry — the // case pins the contract (absolute candidate wins over a relative PATH // prefix), not a worker-exit distinction, which would need an executable // named python3 in the test CWD. const cp = await import('node:child_process') const nodePath = await import('node:path') const pythonDir = nodePath.dirname(cp.execFileSync('which', ['python3'], { encoding: 'utf8' }).trim()) vi.stubEnv('PATH', `.:${pythonDir}`) try { const { runtime, fiber } = await setup({ pythonBin: 'python3', maxWallMs: 30_000 }) const result = await runtime.run({ program: 'return 1', bindings: [] }) expect(result.error).toBeUndefined() expect(result.value).toBe(1) await fiber.dispose() } finally { vi.unstubAllEnvs() } }, 45_000) it('ignores a forged second boot-ack without re-sending the run frame', async () => { // The run frame is sent once, from the first boot-ack; a program that // forges an extra boot-ack frame on fd 3 must not re-enter the gate (a // second run frame would confuse the child's frame reader). The honest // child sends exactly one ack; the forged one exercises the re-entry // guard. const { runtime } = await setup() const result = await runtime.run({ program: [ 'import os', // One forged boot-ack after the program starts; the run already went // out on the real ack. "os.write(3, b'{\"type\":\"boot-ack\"}\\n')", 'return "done"', ].join('\n'), bindings: [], }) expect(result.error).toBeUndefined() expect(result.value).toBe('done') }, 15_000) it('skips a PATH entry that is an executable DIRECTORY named like the interpreter', async () => { // accessSync(X_OK) succeeds on directories, so without the isFile guard a // PATH entry like a `python3` directory would be chosen over a later real // interpreter. The stub PATH puts such a directory first and asserts the // real interpreter is used. const cp = await import('node:child_process') const nodePath = await import('node:path') const { mkdirSync } = await import('node:fs') const realPythonDir = nodePath.dirname(cp.execFileSync('which', ['python3'], { encoding: 'utf8' }).trim()) const fakeDir = makeTempDirSync('dsh-fake-bin-') mkdirSync(nodePath.join(fakeDir, 'python3')) // A directory named python3, executable by default. vi.stubEnv('PATH', `${fakeDir}:${realPythonDir}`) try { const { runtime, fiber } = await setup({ pythonBin: 'python3', maxWallMs: 30_000 }) const result = await runtime.run({ program: 'return 1', bindings: [] }) expect(result.error).toBeUndefined() expect(result.value).toBe(1) await fiber.dispose() } finally { vi.unstubAllEnvs() } }, 45_000) it('rejects a timer budget setTimeout would silently clamp to 1 ms', async () => { // Node stores a setTimeout delay as a signed 32-bit value and substitutes // 1 ms for anything larger, inverting the knob's meaning: a huge maxWallMs // would time every run out at once, and a huge graceMs would SIGKILL one // millisecond after SIGTERM. Both must fail at load instead. const ctx = new Context() await expect(ctx.plugin(PythonCodeRuntime, { maxWallMs: 2_147_483_648 })) .rejects.toThrow(/maxWallMs must not exceed 2147483647/) // graceMs is bounded by the close deadline's added margin, not by the raw // timer maximum, because that sum is what gets armed. await expect(ctx.plugin(PythonCodeRuntime, { graceMs: 2_147_481_648 })) .rejects.toThrow(/graceMs must not exceed 2147481647/) // The exact maxima still load. await expect(ctx.plugin(PythonCodeRuntime, { maxWallMs: 2_147_483_647, graceMs: 2_147_481_647 })) .resolves.toBeDefined() }) it('rejects loading this Unix-only backend on Windows', async () => { // The bootstrap needs the POSIX `resource` module, a positional fd 3, and // negative-PID process-group signals — none on Windows. The constructor // must throw at load rather than register ctx.codeRuntime and defer the // failure to the first run. const original = process.platform Object.defineProperty(process, 'platform', { value: 'win32', configurable: true }) try { const ctx = new Context() await expect(ctx.plugin(PythonCodeRuntime, {})).rejects.toThrow(/requires a Unix platform/) } finally { Object.defineProperty(process, 'platform', { value: original, configurable: true }) } }) it('rejects a binding global that is not a Python identifier or is reserved', async () => { const { runtime } = await setup() await expect(runtime.run({ program: 'return 1', bindings: [{ global: '1bad', functions: {} }], })).rejects.toThrow(/is not a usable Python identifier/) await expect(runtime.run({ program: 'return 1', bindings: [{ global: 'class', functions: {} }], })).rejects.toThrow(/is not a usable Python identifier/) }) it('rejects duplicate binding namespaces', async () => { const { runtime } = await setup() await expect(runtime.run({ program: 'return 1', bindings: [ { global: 'tools', functions: {} }, { global: 'tools', functions: {} }, ], })).rejects.toThrow(/duplicate binding global/) }) it('rejects run() after disposal, and unregisters ctx.codeRuntime', async () => { const { ctx, fiber, runtime } = await setup() await fiber.dispose() await expect(runtime.run({ program: 'return 1', bindings: [] })) .rejects.toThrow(/after disposal/) expect(ctx.get('codeRuntime')).toBeUndefined() }) it('short-circuits when the request signal is already aborted', async () => { const { runtime } = await setup() const signal = AbortSignal.abort('already-cancelled') const result = await runtime.run({ program: 'return 1', bindings: [], signal }) expect(result.error?.kind).toBe('abort') expect(result.error?.message).toContain('already-cancelled') expect(result.logs).toEqual([]) }) it('short-circuits on an already-aborted signal whose reason cannot be converted', async () => { // The pre-flight arm converted the reason with a bare `String()`, so a // hostile reason threw out of `run()` — the seam promises to reject only for // misuse, and a caller's cancellation token is not misuse. const { runtime } = await setup() const signal = AbortSignal.abort({ [Symbol.toPrimitive]() { throw new Error('reason blew up') }, }) const result = await runtime.run({ program: 'return 1', bindings: [], signal }) expect(result.error?.kind).toBe('abort') expect(result.error?.message).toBe('') expect(result.logs).toEqual([]) }) it('runs the interpreter from materialized scripts outside the package, and removes them per run', async () => { // The interpreter is an EXTERNAL process, so it can only open paths the OS // resolves. Inside the single-file Python-SDK executable the packaged `py/` // directory lives in pkg's virtual filesystem, which Node reads through its // patched `fs` but `python3` cannot see, so spawning from that path fails // with ENOENT. The scripts are therefore copied to a real directory first. // // The path is read from the child's own `__main__` module, so it proves // where the interpreter actually loaded the entry script — asserting on a // host-side constant would only restate the source. The program namespace // seeds `__name__` but no `__file__`, hence the module lookup. // `protocol.py` must land in the SAME directory, since `bootstrap.py` puts // its own directory on `sys.path` to import it; the run completing at all // already exercises that import. const { runtime } = await setup() const entryOf = async (): Promise => { const result = await runtime.run({ program: 'import sys\nreturn sys.modules["__main__"].__file__', bindings: [] }) expect(result.error).toBeUndefined() return result.value as string } const entry = await entryOf() expect(entry.endsWith('/bootstrap.py')).toBe(true) const dir = dirname(entry) expect(realpathSync(dirname(dir))).toBe(realpathSync(tmpdir())) expect(basename(dir)).toMatch(/^dsh-code-runtime-python-/) expect(dir).not.toContain('/packages/') // Staging is per RUN and removed at settlement, so by the time `run()` // resolved the directory is already gone — nothing survives to be rewritten // by a later run. `protocol.py` had to be beside the entry script for the run // to complete at all, since `bootstrap.py` imports it off `sys.path`. expect(existsSync(dir)).toBe(false) // A second run stages its own copy rather than reusing the first. expect(dirname(await entryOf())).not.toBe(dir) }) it('contains a program that rewrites its own bootstrap to the run that did it', async () => { // The child runs as the same UID as the host, so `0o700` does not stop model // code from rewriting the scripts it was started from — // `sys.modules['__main__'].__file__` names them. While all runs shared one // staged copy, a program that overwrote `bootstrap.py` broke the NEXT run // (measured: it settled as `worker-exit`), and substituted code would have // run before the resource limits were applied. const { runtime } = await setup({ maxWallMs: 10_000 }) const sabotage = await runtime.run({ program: [ 'import sys', 'path = sys.modules["__main__"].__file__', 'open(path, "w").write("raise SystemExit(1)\\n")', 'return path', ].join('\n'), bindings: [], }) expect(sabotage.error).toBeUndefined() // The damage stayed inside the run that caused it. const after = await runtime.run({ program: 'return 1 + 1', bindings: [] }) expect(after.error).toBeUndefined() expect(after.value).toBe(2) }, 20_000) it('leaves no subprocess or scripts behind when disposal races the first run', async () => { // Staging runs SYNCHRONOUSLY so no async boundary opens between `run()` and // the point where `execute` registers the run in `live` and installs the // abort listener. With an `await` there, a disposal landing in that window // saw an empty `live`, returned, removed the script directory, and let the // continuation spawn a subprocess after the fiber was gone. // // `dispose()` is called in the same synchronous turn as `run()`, with no // `await` between them, so it lands exactly in that window. // // The leak assertion checks the EXACT paths this test file staged (recorded // by the mocked mkdtempSync) rather than diffing a global tmpdir: a // parallel vitest worker can create or remove same-prefix directories // inside the sampling window, which a readdir diff would misattribute to // this test (boot-write-failure.spec.ts records the same race). const stagedBefore = stagedDirs.length const { fiber, runtime } = await setup({ maxWallMs: 8_000 }) const pending = runtime.run({ program: 'import time\nwhile True: time.sleep(0.1)', bindings: [] }) const disposed = fiber.dispose() const result = await pending await disposed // Whatever the run reports, it must be terminal and must not be a success. expect(result.value).toBeUndefined() expect(['abort', 'worker-exit', 'timeout']).toContain(result.error?.kind) // Disposal is to quiescence, so every directory this run staged is gone. const created = stagedDirs.slice(stagedBefore) for (const dir of created) expect(existsSync(dir)).toBe(false) }, 15_000) it('settles as abort when the signal fires in the same turn as the first run', async () => { // Same window, the other listener. `addEventListener('abort')` does not // replay an event that already fired, so an abort landing before the // listener was installed used to be missed entirely and the program ran to // success or the wall ceiling instead of resolving as `abort`. Synchronous // staging keeps the pre-flight check and the listener in one turn, leaving // no gap for the signal to slip through. const { runtime } = await setup({ maxWallMs: 4_000, graceMs: 200 }) const controller = new AbortController() const pending = runtime.run({ program: 'import time\nwhile True: time.sleep(0.1)', bindings: [], signal: controller.signal, }) controller.abort('same-turn-abort') const result = await pending expect(result.error?.kind).toBe('abort') expect(result.error?.message).toContain('same-turn-abort') }, 15_000) it('reports a staging failure as worker-exit instead of rejecting run()', async () => { // Staging touches the filesystem, so it can fail for reasons that are not // the caller's doing: a full or read-only temp filesystem, or a deployment // that failed to ship the packaged scripts. Those are SUBSTRATE failures, // the same class as a child that cannot start, and the seam reserves // rejection for misuse — so `run()` must resolve, not throw. // // `TMPDIR` is the honest lever: `mkdtempSync` builds its path from // `os.tmpdir()`, so pointing it at a path that is not a directory makes the // real call fail without stubbing the module under test. const previous = process.env.TMPDIR const notADirectory = join(await makeTempDir('dsh-staging-'), 'file') await writeFile(notADirectory, '') process.env.TMPDIR = notADirectory try { const { runtime } = await setup() const result = await runtime.run({ program: 'return 1', bindings: [] }) expect(result.error?.kind).toBe('worker-exit') expect(result.error?.message).toContain('failed to stage the python bootstrap') expect(result.logs).toEqual([]) } finally { if (previous === undefined) delete process.env.TMPDIR else process.env.TMPDIR = previous } }) it('leaves no staging directory behind when a script copy fails', async () => { // `mkdtempSync` succeeding and a later `copyFileSync` failing is its own // case: the directory exists but is only partially populated. Recording it // before the copies would leak it, because `run` retries staging on the next // call and overwrites the single recorded path — teardown could then remove // only the newest attempt. Staging must clean up its own partial directory. // // Only `copyFileSync` is stubbed, and only for the second script, so // `mkdtempSync` really runs and the directory under assertion is real. // The assertion checks the exact paths this test staged (see the sibling // disposal-race test for why a global tmpdir diff races parallel workers). const stagedBefore = stagedDirs.length failNextCopyOf.value = 'protocol.py' try { const { runtime } = await setup() const result = await runtime.run({ program: 'return 1', bindings: [] }) expect(result.error?.kind).toBe('worker-exit') expect(result.error?.message).toContain('failed to stage the python bootstrap') // The partial directory is gone, so nothing accumulates across retries. for (const dir of stagedDirs.slice(stagedBefore)) expect(existsSync(dir)).toBe(false) } finally { failNextCopyOf.value = undefined } }, 15_000) }) describe('PythonCodeRuntime — process identity', () => { it('reads a live process start time and distinguishes it from an absent pid', () => { // The teardown guard signals `-child.pid` with a RAW `process.kill`, which // (unlike `child.kill()`) has no handle check, so it would reach a recycled // pgid during the window between the leader being reaped and `close` firing. // A pid alone cannot separate the original from its replacement -- both // answer `kill(pid, 0)` -- so the guard compares START TIME, and this pins // that the reading is stable for one process and absent for a pid that // cannot be read. const own = readProcessStart(process.pid) if (process.platform === 'linux') { // Same process, two reads: the identity must be stable, or the guard would // refuse to signal its own live group. expect(own).toBeDefined() expect(readProcessStart(process.pid)).toBe(own) // Pid 0 is never a readable /proc entry, so the guard degrades to // undefined rather than throwing on a teardown path. This is also the // reading a REAPED leader produces -- its /proc entry is gone while the // group it led can still hold survivors -- so `undefined` must NOT be // treated as an identity mismatch. Reading it as one refused the SIGKILL // that the same-group survivor tests depend on, which is why they went red // on Linux while passing on Darwin (where the reader always returns // undefined and the guard is inert). expect(readProcessStart(0)).toBeUndefined() } else { // Darwin has no /proc: the reader reports undefined, and `killGroup` // signals the pgid without the identity re-check instead of paying a `ps` // fork per signal. expect(own).toBeUndefined() } }) }) describe('PythonCodeRuntime — inherited resource limits', () => { // Darwin deliberately does not apply RLIMIT_AS, and its shell rejects `ulimit -v`. it.skipIf(process.platform === 'darwin')('runs under an inherited hard limit tighter than addressSpaceMb', async () => { // An unprivileged process may lower a hard rlimit but never raise it. Under // a harness started with `ulimit -v` below `addressSpaceBytes`, requesting // the configured cap made `setrlimit` raise `ValueError` and every run // returned a bootstrap exception — even though the inherited limit is // STRONGER than the one asked for. The bootstrap clamps to the inherited // hard limit instead, so the run proceeds under the stricter bound. // // `pythonBin` is the honest lever: a wrapper that lowers RLIMIT_AS and then // execs the real interpreter reproduces the inherited-limit condition // without touching this test process's own limits. const dir = await makeTempDir('dsh-rlimit-') const wrapper = join(dir, 'python3-capped') // 256 MiB, half the 512 MiB addressSpaceMb default, so the requested cap is // unambiguously above the inherited ceiling. await writeFile(wrapper, `#!/bin/sh\nulimit -v 262144\nexec "${PYABS}" "$@"\n`, { mode: 0o755 }) const { runtime } = await setup({ pythonBin: wrapper }) const result = await runtime.run({ program: 'import resource\nreturn resource.getrlimit(resource.RLIMIT_AS)[1]', bindings: [], }) expect(result.error).toBeUndefined() // The applied hard limit is the inherited one, not the configured 512 MiB. expect(result.value).toBe(256 * 1024 * 1024) }, 15_000) it('rejects at boot when an inherited RLIMIT_AS is too tight for the output budgets', async () => { // The host gate validates the output budgets against the CONFIGURED // addressSpaceMb, but a launch environment can inherit a STRICTER RLIMIT_AS // (a `ulimit -v` wrapper below addressSpaceMb), which the bootstrap clamps the // effective limit down to — leaving the budgets sized for a ceiling the child // never gets, so a near-budget output would OOM mid-run as an opaque // worker-exit. The bootstrap re-checks both budgets against the EFFECTIVE // clamped limit and fails loud at boot instead. A 128 MiB inherited limit // leaves 64 MiB budgetable (~5 MiB admissible under the 12x multiple), under // which a 32 MiB maxLogBytes — admitted by the 512 MiB configured default — is // rejected. The rejection surfaces as an 'exception' (bootstrap's // setrlimit-phase failure class), not a mid-run OOM. The repro is Linux-only // (macOS ignores `ulimit -v`); there the run proceeds. const dir = await makeTempDir('dsh-rlimit-') const wrapper = join(dir, 'python3-tight') await writeFile(wrapper, `#!/bin/sh\nulimit -v 131072\nexec "${PYABS}" "$@"\n`, { mode: 0o755 }) const { runtime } = await setup({ pythonBin: wrapper, maxLogBytes: 32 * 1024 * 1024, addressSpaceMb: 512 }) const result = await runtime.run({ program: 'return 1', bindings: [] }) if (process.platform === 'darwin') { expect(result.error).toBeUndefined() } else { // The re-check raises inside bootstrap's resource-limit block, which // reports every setrlimit-phase failure as kind 'exception'; the message // discriminates this config rejection from a generic setrlimit error. expect(result.error?.kind).toBe('exception') expect(result.error?.message).toContain('too large for the inherited RLIMIT_AS') } }, 15_000) // The expected tuple includes RLIMIT_AS, which the backend deliberately skips on Darwin. it.skipIf(process.platform === 'darwin')('applies the configured limits when nothing tighter is inherited', async () => { // The clamp must not weaken the normal path: with an infinite inherited hard // limit there is nothing to clamp against, and RLIM_INFINITY compares as -1, // so treating it as a numeric bound would collapse every limit to -1. const { runtime } = await setup({ cpuSeconds: 42, addressSpaceMb: 400 }) const result = await runtime.run({ // `getrlimit` returns a tuple, which the lossless-JSON completion check // rejects; the pair is listed explicitly rather than converted. program: [ 'import resource, sys', 'cpu = resource.getrlimit(resource.RLIMIT_CPU)', 'address_space = None if sys.platform == "darwin" else resource.getrlimit(resource.RLIMIT_AS)[1]', 'return {"cpu": [cpu[0], cpu[1]], "addressSpace": address_space}', ].join('\n'), bindings: [], }) expect(result.error).toBeUndefined() // Darwin deliberately skips RLIMIT_AS; every other Unix host applies the // configured bytes alongside the CPU soft/hard pair. expect(result.value).toEqual({ cpu: [42, 43], addressSpace: process.platform === 'darwin' ? null : 400 * 1024 * 1024, }) }, 15_000) it('preserves an inherited soft limit stricter than the configured cap', async () => { // Clamping reads BOTH inherited bounds, not just the hard one. A deployment // that inherited a soft rlimit below the configured cap must keep that // stricter soft: returning the configured value would RAISE the effective // soft limit, loosening containment. The wrapper lowers only the SOFT CPU // limit (`ulimit -S -t`) and leaves the hard limit unlimited, so the // requested soft (`cpuSeconds`) sits above the inherited soft — the case that // exposed the bug. RLIMIT_CPU is used because macOS ignores `ulimit -v` // (RLIMIT_AS), which is exactly why the backend skips address space there. const dir = await makeTempDir('dsh-rlimit-soft-') const wrapper = join(dir, 'python3-soft-capped') // Soft CPU 5 s, well below the configured 30 s, hard left unlimited. await writeFile(wrapper, `#!/bin/sh\nulimit -S -t 5\nexec "${PYABS}" "$@"\n`, { mode: 0o755 }) const { runtime } = await setup({ pythonBin: wrapper, cpuSeconds: 30 }) const result = await runtime.run({ program: 'import resource\nreturn resource.getrlimit(resource.RLIMIT_CPU)[0]', bindings: [], }) expect(result.error).toBeUndefined() // The applied SOFT limit is the inherited 5 s, not the configured 30 s. expect(result.value).toBe(5) }, 15_000) it('reports a CPU overrun under a dual-limit ulimit as a timeout, not a worker-exit', async () => { // `ulimit -t N` sets BOTH the soft and hard CPU limit to N. The kernel // checks the hard limit and SIGKILLs a busy loop directly, so with // soft == hard the SIGXCPU signal is never delivered — and the host // classifies a CPU overrun ONLY on `signal === 'SIGXCPU'`, so the overrun // would be misreported as a `worker-exit` instead of a timeout. `_clamped` // now lowers a clamped soft==hard result by one unit (when hard >= 2), so // the SIGXCPU signal fires at the softer limit and the run reports a // timeout. This uses `ulimit -t 2` (hard == 2, so the soft is lowered to 1) // and leaves SIGXCPU unhandled, so the kernel terminates the busy loop at // 1 s with SIGXCPU and the host classifies it as a timeout. const dir = await makeTempDir('dsh-rlimit-dual-') const wrapper = join(dir, 'python3-dual-capped') // Both soft and hard CPU 2 s; configured cpuSeconds 30 s. await writeFile(wrapper, `#!/bin/sh\nulimit -t 2\nexec "${PYABS}" "$@"\n`, { mode: 0o755 }) const { runtime } = await setup({ pythonBin: wrapper, cpuSeconds: 30, maxWallMs: 12_000 }) const result = await runtime.run({ program: [ 'while True:', ' pass', 'return "unreachable"', ].join('\n'), bindings: [], }) expect(result.error?.kind).toBe('timeout') expect(result.error?.message).toContain('CPU time exhausted') }, 15_000) it('reports a timeout when a program masks SIGXCPU and returns past the soft limit', async () => { // A program can mask SIGXCPU (pthread_sigmask SIG_BLOCK), burn past the // soft CPU limit, and return during the soft-to-hard gap. The settlement // recheck (`die_if_cpu_exhausted`) must UNBLOCK the signal before // re-delivering it, or the SIGXCPU stays pending and the child exits // normally with a success result. With the unblock, the re-delivered // SIGXCPU (default disposition) terminates the child and the host // classifies the run as a timeout. Fail-before: without the unblock the // run reports `value: "escaped"` and no error. The masking is guarded by // hasattr so the case is a no-op on platforms without pthread_sigmask. const { runtime } = await setup({ cpuSeconds: 1, maxWallMs: 12_000 }) const result = await runtime.run({ program: [ 'import signal, time', 'if hasattr(signal, "pthread_sigmask"):', ' signal.pthread_sigmask(signal.SIG_BLOCK, {signal.SIGXCPU})', 'end = time.process_time() + 1.05', 'while time.process_time() < end:', ' pass', 'return "escaped"', ].join('\n'), bindings: [], }) expect(result.error?.kind).toBe('timeout') expect(result.value).toBeUndefined() }, 20_000) it('reports a timeout when the interpreter was started with SIGXCPU ignored (inherited state)', async () => { // The child inherits the host's SIGXCPU disposition: a wrapper that // ignores SIGXCPU before exec'ing python3 hands the child a soft // RLIMIT_CPU that cannot stop it. The bootstrap resets SIGXCPU to SIG_DFL // before model code runs, so a busy loop still ends as a timeout rather // than running to the hard limit and being misclassified as worker-exit. const wrapper = join(tmpdir(), `dsh-xcpu-ignore-${process.pid}.sh`) tempFiles.push(wrapper) writeFileSync(wrapper, `#!/bin/sh\ntrap "" XCPU\nexec "${PYABS}" "$@"\n`, { mode: 0o755 }) try { const { runtime } = await setup({ maxWallMs: 30_000, cpuSeconds: 1, pythonBin: wrapper }) const result = await runtime.run({ program: ['while True: pass'].join('\n'), bindings: [], }) expect(result.error?.kind).toBe('timeout') } finally { rmSync(wrapper, { force: true }) } }, 20_000) it('reports a timeout when a program traps AND masks SIGXCPU and returns past the soft limit', async () => { // The mask-only case exercises the unblock; the trap+mask combination is // the harder one: a program that installed a custom handler AND masked the // signal has that PENDING handler run the moment the signal is unblocked // (CPython delivers it at the next eval-breaker checkpoint in model code), // and the handler re-masks — so the settlement recheck must restore the // default disposition BEFORE unblocking. With SIG_DFL restored first, the // pending signal kills the process inside the kernel with no bytecode // window; without it, the handler re-blocks and the child exits normally // with a success value. Fail-before: the run reports `value: "escaped"`. const { runtime } = await setup({ cpuSeconds: 1, maxWallMs: 12_000 }) const result = await runtime.run({ program: [ 'import signal, time', 'if hasattr(signal, "pthread_sigmask"):', ' def h(signum, frame):', ' signal.pthread_sigmask(signal.SIG_BLOCK, {signal.SIGXCPU})', ' signal.signal(signal.SIGXCPU, h)', ' signal.pthread_sigmask(signal.SIG_BLOCK, {signal.SIGXCPU})', ' end = time.process_time() + 1.05', ' while time.process_time() < end:', ' pass', 'return "escaped"', ].join('\n'), bindings: [], }) expect(result.error?.kind).toBe('timeout') expect(result.value).toBeUndefined() }, 20_000) it('rechecks CPU at settlement against the effective inherited soft limit', async () => { // The settlement-time CPU recheck must compare against the EFFECTIVE soft // limit (`_clamped` may have lowered it to a stricter inherited value), not // the configured `cpuSeconds`. A program that traps SIGXCPU, burns past the // inherited soft, and returns inside the soft-to-hard gap would otherwise be // compared to the configured value and falsely reported successful, bypassing // the inherited limit. The wrapper sets a 1 s soft CPU limit; the program // traps SIGXCPU and busy-loops past it, then returns — the recheck must // re-deliver SIGXCPU so the host classifies the run as a timeout. const dir = await makeTempDir('dsh-cpu-recheck-') const wrapper = join(dir, 'python3-cpu-capped') await writeFile(wrapper, `#!/bin/sh\nulimit -S -t 1\nexec "${PYABS}" "$@"\n`, { mode: 0o755 }) const { runtime } = await setup({ pythonBin: wrapper, cpuSeconds: 30, maxWallMs: 12_000 }) const result = await runtime.run({ program: [ 'import signal, time', // Trap SIGXCPU so the soft limit does not terminate the program; burn // CPU well past the inherited 1 s soft, then return normally. 'signal.signal(signal.SIGXCPU, lambda *a: None)', 'end = time.process_time() + 2.5', 'while time.process_time() < end:', ' pass', 'return "returned"', ].join('\n'), bindings: [], }) // The recheck compares spent CPU against the effective 1 s soft, not 30 s, so // the run is a timeout rather than a false success. expect(result.error?.kind).toBe('timeout') }, 20_000) }) describe('PythonCodeRuntime — programs and bindings', () => { it('runs a top-level script, captures print output, and returns `result`', async () => { const { runtime } = await setup() const result = await runtime.run({ program: [ 'x = 40', 'y = 2', 'print("hello", x + y)', 'return {"answer": x + y}', ].join('\n'), bindings: [], }) expect(result.error).toBeUndefined() expect(result.value).toEqual({ answer: 42 }) // `print` in Python emits: text, ' ', text, '\n'. Concat the captured // fragments and assert the model-visible message survives. expect(result.logs.join('')).toContain('hello 42') // 15s: this is usually the suite's first real subprocess — a cold python3 // start (interpreter + asyncio import) on a loaded CI runner can exceed // the 5s default alone; later tests reuse the warm page cache. }, 15_000) it('exposes only the platform temp directory from the host environment', async () => { const { runtime } = await setup() const result = await runtime.run({ program: [ 'import os', 'return {', ' "tmpdir": os.environ.get("TMPDIR"),', ' "path": os.environ.get("PATH"),', ' "home": os.environ.get("HOME"),', ' "token": os.environ.get("DEEPSEEK_API_KEY"),', '}', ].join('\n'), bindings: [], }) expect(result.error).toBeUndefined() expect(result.value).toEqual({ tmpdir: tmpdir(), path: null, home: null, token: null }) expect(result.logs).toEqual([]) }) it('bridges binding calls both ways and rejects the program-side call on a host rejection', async () => { const { runtime } = await setup() const calls: unknown[] = [] const result = await runtime.run({ program: [ 'first = await tools.echo({"n": 1})', 'caught = ""', 'try:', ' await tools.fail({})', 'except RuntimeError as e:', ' caught = str(e)', 'return {"first": first, "caught": caught}', ].join('\n'), bindings: tools({ echo: async (args) => { calls.push(args); return { echoed: args as CodeJsonValue } }, fail: async () => { throw new Error('nope') }, }), }) expect(result.error).toBeUndefined() expect(result.value).toEqual({ first: { echoed: { n: 1 } }, caught: 'nope' }) expect(calls).toEqual([{ n: 1 }]) }) it('keeps decoding binding replies when _decode_json_plain is rebound', async () => { // read_frame_async resolves _decode_json_plain at call time; a program that // rebinds __main__._decode_json_plain would otherwise kill the reply pump // (a broken decode strands every pending Future to the wall clock). The // decode primitives are def-time captures on the channel methods, so a // rebind cannot break reply delivery. const { runtime } = await setup() const result = await runtime.run({ program: [ 'import __main__', '__main__._decode_json_plain = None', 'first = await tools.echo({"n": 1})', 'return first', ].join('\n'), bindings: tools({ echo: async args => ({ echoed: args as CodeJsonValue }), }), }) expect(result.error).toBeUndefined() expect(result.value).toEqual({ echoed: { n: 1 } }) }, 15_000) it('keeps dispatch working when _lossless_json_violation, asyncio, and send_sync are rebound', async () => { // dispatch binds _lossless_json_violation, asyncio.get_event_loop, and the // channel's send method into _run locals before the program runs, so a // rebind of __main__._lossless_json_violation/__main__.asyncio/ // __main__.ProtocolChannel.send_sync cannot turn a legitimate binding call // into an exception or a wall-clock timeout. const { runtime } = await setup() const result = await runtime.run({ program: [ 'import __main__', 'def boom(*a, **k):', ' raise RuntimeError("hijacked")', '__main__._lossless_json_violation = boom', '__main__.asyncio = boom', '__main__.ProtocolChannel.send_sync = boom', '__main__._encode_json_plain = boom', '__main__.ProtocolChannel.write_encoded = boom', 'first = await tools.echo({"n": 1})', 'return first', ].join('\n'), bindings: tools({ echo: async args => ({ echoed: args as CodeJsonValue }), }), }) expect(result.error).toBeUndefined() expect(result.value).toEqual({ echoed: { n: 1 } }) }, 15_000) it('keeps the reply pump reading when the read_frame_async class attribute is rebound', async () => { // _pump_replies' frame reader is a bound method captured by _run before the // program runs and passed in as an explicit argument, so a program rebinding // `__main__.ProtocolChannel.read_frame_async` cannot redirect the pump (a // body-local `channel.read_frame_async` lookup would resolve the rebound // class attribute, since the pump starts after the program's top-level // statements). const { runtime } = await setup() const result = await runtime.run({ program: [ 'import __main__', 'async def boom(*a, **k):', ' raise RuntimeError("hijacked reader")', '__main__.ProtocolChannel.read_frame_async = boom', 'first = await tools.echo({"n": 1})', 'return first', ].join('\n'), bindings: tools({ echo: async args => ({ echoed: args as CodeJsonValue }), }), }) expect(result.error).toBeUndefined() expect(result.value).toEqual({ echoed: { n: 1 } }) }, 15_000) it('keeps the rejection contract when _BindingRejection is rebound', async () => { // `dispatch`'s except clause resolves `_BindingRejection` at call time; a // program that rebinds `__main__._BindingRejection = ValueError` would // otherwise let the internal marker type leak into model code (the program // would catch a `ValueError` for a host rejection). The class is now bound // into `_run` locals before the program runs, so a host rejection still // surfaces as the declared `RuntimeError`. const { runtime } = await setup() const result = await runtime.run({ program: [ 'import __main__', '__main__._BindingRejection = ValueError', 'caught = ""', 'try:', ' await tools.fail({})', 'except RuntimeError as e:', ' caught = e.args[0] if e.args else ""', 'except Exception as e:', ' caught = "WRONG TYPE: " + type(e).__name__', 'return caught', ].join('\n'), bindings: tools({ fail: async () => { throw new Error('nope') }, }), }) expect(result.error).toBeUndefined() expect(result.value).toBe('nope') }, 15_000) it('still answers the call when the rejection value cannot be converted to a string', async () => { // `messageOf` calls `String(error)`, which runs the value's own conversion, // and this call site is a DETACHED async reply callback. A rejection whose // `Symbol.toPrimitive` throws therefore escaped as an unhandled rejection: // the reply frame was never written, the program stayed blocked on `await`, // and the run degraded to a `maxWallMs` timeout (observed) — a host with no // `unhandledRejection` listener would exit instead. The rejection must reach // the program as an ordinary error carrying a fixed placeholder. const { runtime } = await setup({ maxWallMs: 8_000 }) const result = await runtime.run({ program: [ 'try:', ' await tools.hostile({})', 'except RuntimeError as e:', ' return "rejected: " + str(e)', 'return "no rejection"', ].join('\n'), bindings: tools({ hostile: async () => { throw { [Symbol.toPrimitive]() { throw new Error('toPrimitive blew up') } } }, }), }) expect(result.error).toBeUndefined() expect(result.value).toBe('rejected: ') }, 15_000) it('still answers the call when an Error carries a cyclic value in place of its message', async () => { // `Error.message` is typed `string` but is a plain writable property, so a // rejection can carry any value there. Returning it verbatim handed a // non-string to `sendReply`, breaching `encodeJsonPlain`'s JSON-plain // precondition: a cyclic object grew the encoder stack until the host threw // RangeError from the detached reply callback, so no reply frame was written // and the run degraded to a `maxWallMs` timeout (observed). The conversion // must contain it — `String()` on a cycle throws inside the guard and lands // on the placeholder, so the program sees an ordinary error. const { runtime } = await setup({ maxWallMs: 8_000 }) const result = await runtime.run({ program: [ 'try:', ' await tools.hostile({})', 'except RuntimeError as e:', ' return "rejected: " + str(e)', 'return "no rejection"', ].join('\n'), bindings: tools({ hostile: async () => { const cyclic: { self?: unknown; [Symbol.toPrimitive]: () => string } = { // A cycle alone is inert for `String()`; the throwing conversion is // what proves the guard runs rather than the encoder. [Symbol.toPrimitive]: () => { throw new Error('cyclic message') }, } cyclic.self = cyclic const error = new Error('placeholder') // Writable per spec, so no cast is needed to install a non-string. ;(error as unknown as { message: unknown }).message = cyclic throw error }, }), }) expect(result.error).toBeUndefined() expect(result.value).toBe('rejected: ') }, 15_000) it('renders an Error whose message is a value with no JSON form', async () => { // The non-cyclic arm. A number would not discriminate: `scalarJson` renders // it as digits and the child `str()`s the field back, so it survives the // wire either way. `undefined` is the value that separates the two orders — // `scalarJson` emits a bare `undefined` token, so the reply line is not JSON // at all, the child's parse drops the frame, and the program stays blocked // on `await` until the wall ceiling (observed). Converting first sends the // string "undefined", which the program receives as an ordinary rejection. const { runtime } = await setup({ maxWallMs: 8_000 }) const result = await runtime.run({ program: [ 'try:', ' await tools.absent({})', 'except RuntimeError as e:', ' return "rejected: " + str(e)', 'return "no rejection"', ].join('\n'), bindings: tools({ absent: async () => { const error = new Error('placeholder') ;(error as unknown as { message: unknown }).message = undefined throw error }, }), }) expect(result.error).toBeUndefined() expect(result.value).toBe('rejected: undefined') }, 15_000) it('runs a program with no await', async () => { const { runtime } = await setup() const result = await runtime.run({ program: 'return 2 + 2', bindings: [], }) expect(result.error).toBeUndefined() expect(result.value).toBe(4) }) it('returns JSON null whether the program returns None or falls off the end', async () => { // Python has no `undefined`: an async body that returns None and one that // never returns both yield None, so both complete as an exact JSON null. // (The worker/TS backend can tell `return undefined` from `return null`; // Python cannot, and reporting null for both is the honest rendering.) const { runtime } = await setup() const explicit = await runtime.run({ program: 'return None', bindings: [] }) expect(explicit.error).toBeUndefined() expect(explicit.value).toBeNull() const noReturn = await runtime.run({ program: 'x = 1', bindings: [] }) expect(noReturn.error).toBeUndefined() expect(noReturn.value).toBeNull() }) it('settles with no value on a forged valueless done frame', async () => { // The child always sends a value now (return None → JSON null), so a done // frame with no value key can only be forged; the host settles it as a // value-less completion rather than crashing on the absent field. const { runtime } = await setup() const result = await runtime.run({ program: [ 'import os', 'os.write(3, b\'{"type":"done"}\\n\')', 'import time', 'time.sleep(5)', ].join('\n'), bindings: [], }) expect(result.error).toBeUndefined() expect(result.value).toBeUndefined() }) it('coalesces print arguments into one log line, not per-write fragments', async () => { // print("a","b") calls write() per arg/sep/newline; the stream must emit // one logical line "a b" so PTC mode's join(newline) does not insert // spurious blank lines. Two prints → exactly two entries, no empties. const { runtime } = await setup() const result = await runtime.run({ program: ['print("a", "b")', 'print("c")', 'return None'].join('\n'), bindings: [], }) expect(result.error).toBeUndefined() expect(result.logs).toEqual(['a b', 'c']) }) it('flushes a print with no trailing newline', async () => { const { runtime } = await setup() const result = await runtime.run({ program: ['print("partial", end="")', 'return None'].join('\n'), bindings: [], }) expect(result.error).toBeUndefined() expect(result.logs).toEqual(['partial']) }) it('aggregates a large newline-free native write into one log entry, not one per pipe chunk', async () => { // A single `os.write` larger than one pipe read arrives as several Node // `data` chunks. `logs` entries are joined with `\n` downstream, so pushing // one entry per transport chunk would insert model-visible newlines at // arbitrary pipe boundaries inside one native write. Stray capture holds a // per-stream residual and admits only on a real `\n`, so a 200 KiB blast // with no newline reads back as exactly one entry with no interior breaks. const { runtime } = await setup({ maxLogBytes: 300_000 }) const size = 200_000 const result = await runtime.run({ program: ['import os', `os.write(1, b"A" * ${size})`, 'return None'].join('\n'), bindings: [], }) expect(result.error).toBeUndefined() expect(result.logs).toEqual(['A'.repeat(size)]) }) it('splits native output on its own newlines, one entry per line', async () => { // The complement of the aggregation case: real newlines in a native write // still delimit entries, matching the child's line-granular `log` frames. const { runtime } = await setup() const result = await runtime.run({ program: ['import os', 'os.write(1, b"one\\ntwo\\nthree")', 'return None'].join('\n'), bindings: [], }) expect(result.error).toBeUndefined() expect(result.logs).toEqual(['one', 'two', 'three']) }) it('preserves each native stream order while allowing backend-dependent interleaving', async () => { const { runtime } = await setup() const result = await runtime.run({ program: [ 'import os', 'os.write(1, b"stdout-one\\n")', 'os.write(2, b"stderr-one\\n")', 'os.write(1, b"stdout-two\\n")', 'os.write(2, b"stderr-two\\n")', 'return None', ].join('\n'), bindings: [], }) expect(result.error).toBeUndefined() expect(result.logs.indexOf('stdout-one')).toBeLessThan(result.logs.indexOf('stdout-two')) expect(result.logs.indexOf('stderr-one')).toBeLessThan(result.logs.indexOf('stderr-two')) }) it('bounds a newline-free native flood by the ledger instead of buffering it whole', async () => { // A newline-free write far larger than maxLogBytes must not accumulate in // the host-side residual: when the pending residual would cross the budget // it is admitted (and truncated) immediately, and once the ledger has // truncated, later chunks stop buffering entirely. The run still completes // and the captured output ends at the truncation marker rather than // retaining the whole flood. const { runtime } = await setup({ maxLogBytes: 4096 }) const result = await runtime.run({ program: ['import os', 'os.write(1, b"A" * 2_000_000)', 'return None'].join('\n'), bindings: [], }) expect(result.error).toBeUndefined() expect(result.logs.at(-1)).toBe(logTruncationMarker(4096)) // The retained output is bounded by the budget, not the 2 MB flood. expect(result.logs.join('').length).toBeLessThan(4096) }) it('bounds a newline-free single-character Python write drip by the fragment cap, not OOM', async () => { // The child-side `_LogStream` buffers one fragment per `write` (so // `print("x", end="")` does not concatenate quadratically). A newline-free // drip of one character per call past a large `maxLogBytes` would otherwise // accumulate one list slot (and one str object) per call — 25 M calls = // ~25 M slots, which OOMs the host on its own accounting before the byte // budget is reached. The stream seals the fragment list past // `_PENDING_MAX_CHUNKS` into one joined block (character count unchanged), // bounding the live fragment count exactly as the host-side `captureStray` // seal does. This drives well past the cap and asserts the run still // completes with a truncation marker rather than a MemoryError. const { runtime } = await setup({ maxLogBytes: 4096 }) const result = await runtime.run({ program: [ 'import sys', 'for _ in range(200_000):', ' sys.stdout.write("x")', 'return None', ].join('\n'), bindings: [], }) expect(result.error).toBeUndefined() expect(result.logs.at(-1)).toBe(logTruncationMarker(4096)) }) it('bounds a control-char-dense native residual by serialized cost, not raw length', async () => { // A newline-free NUL flood passes the cheap `length + 3` lower bound at a // raw length well under the budget, but each NUL serializes to `\u0000` (6 // bytes), so the true JSON cost is ~6x. The ledger must charge that // serialized cost — and `jsonStringCostUpTo` must measure it WITHOUT // allocating the escaped copy, so a near-budget line under a large // maxLogBytes cannot momentarily allocate a multi-gigabyte `JSON.stringify` // result. Under a small budget the residual is truncated once the serialized // cost crosses it. const { runtime } = await setup({ maxLogBytes: 4096 }) const result = await runtime.run({ program: ['import os', 'os.write(1, b"\\x00" * 4000)', 'return None'].join('\n'), bindings: [], }) expect(result.error).toBeUndefined() expect(result.logs.at(-1)).toBe(logTruncationMarker(4096)) }) it('rejects an output budget that could breach addressSpaceMb during encode at load', async () => { // The child builds, charges, and encodes a `maxLogBytes` log entry or a // `maxValueBytes` completion value under RLIMIT_AS, and both trigger on // character count against a serialized-byte budget — an astral character is // one character but ~4 bytes stored and ~4 encoded, and THREE such copies are // live at the peak (the caller's write argument, the slice/join handed to // push, and the encode copy), so a budget approaching the address space lets a // legitimate near-budget output breach it and die as worker-exit. The // incompatible pair is rejected at load: each budget times the worst-case // multiple (12) must fit the address space LEFT after the fixed interpreter // baseline. Against a 256 MiB address space that leaves 192 MiB budgetable // (~16 MiB admissible), so a 50 MB cap is far over; the default caps against // 512 MiB are not. Both budgets are gated symmetrically — the value case sets // a default-fitting maxLogBytes so the maxValueBytes check is what fires. const ctxLog = new Context() await expect(ctxLog.plugin(PythonCodeRuntime, { maxLogBytes: 50_000_000, addressSpaceMb: 256 })) .rejects.toThrow(/maxLogBytes times the 12x worst-case Unicode expansion must fit/) const ctxValue = new Context() await expect(ctxValue.plugin(PythonCodeRuntime, { maxValueBytes: 50_000_000, addressSpaceMb: 256 })) .rejects.toThrow(/maxValueBytes times the 12x worst-case Unicode expansion must fit/) // Discriminates 12 from 8: a 48 MiB maxLogBytes against a 512 MiB address // space leaves 448 MiB budgetable. 48*8 = 384 MiB fits (the old 8x multiple // wrongly ADMITTED this), but 48*12 = 576 MiB does not. The ~12x peak this // guards is the NEWLINE path's single near-budget write — the caller's own // string, the line slice, and the encode copy live at once. The settlement // flush is no longer the binding case: `flush_line` drops the pending chunks // before its push, so it holds two copies, not three. const ctxTwelve = new Context() await expect(ctxTwelve.plugin(PythonCodeRuntime, { maxLogBytes: 48 * 1024 * 1024, addressSpaceMb: 512 })) .rejects.toThrow(/maxLogBytes times the 12x worst-case Unicode expansion must fit/) // An addressSpaceMb at or below the interpreter baseline leaves nothing // budgetable, so no budget value can pass. It is rejected on its own terms: // the budget loop would otherwise report "a limit of -1" (or -2796203 at // 32 MiB) while naming maxLogBytes, sending the operator to the wrong knob. const ctxBaseline = new Context() await expect(ctxBaseline.plugin(PythonCodeRuntime, { addressSpaceMb: 64 })) .rejects.toThrow(/addressSpaceMb must exceed the 67108864-byte interpreter baseline/) const ctxBelow = new Context() await expect(ctxBelow.plugin(PythonCodeRuntime, { addressSpaceMb: 32 })) .rejects.toThrow(/addressSpaceMb must exceed the 67108864-byte interpreter baseline/) // The default caps against the default 512 MiB address space load. const ok = new Context() const fiber = await ok.plugin(PythonCodeRuntime, { maxLogBytes: 65536, maxValueBytes: 32768, addressSpaceMb: 512 }) await fiber.dispose() }) it('bounds an illegal-UTF-8 native residual by its U+FFFD-decoded cost', async () => { // Every 0xFF byte is illegal in any UTF-8 sequence, so `toString('utf8')` // renders each as U+FFFD (3 serialized bytes). `accrueStrayCost` must charge // that 3, not the raw 1: otherwise the newline-free residual grows to a full // budget's worth of RAW bytes before flushing — a ~3x undercount that near a // large maxLogBytes retains hundreds of MiB then expands toward a ~1 GiB peak // in flushStray's concat + toString. Paced single-byte writes (each its own // `data` chunk, like the sealing case) expose the sub-chunk accrual: charged // at 3 the residual crosses a 3072-byte budget after ~1024 bytes and flushes; // charged at 1 it would need ~3072 bytes, so the peak residual triples. The // largest merged buffer is the discriminator. const realConcat = Buffer.concat.bind(Buffer) let maxConcat = 0 Buffer.concat = (list: readonly Uint8Array[], total?: number): Buffer => { const merged = realConcat(list, total) if (merged.length > maxConcat) maxConcat = merged.length return merged } let result: CodeRunResult try { const { runtime } = await setup({ maxLogBytes: 3072, maxWallMs: 30_000 }) result = await runtime.run({ program: [ 'import os', 'for _ in range(6000):', ' os.write(1, b"\\xff")', ' os.sched_yield()', 'return None', ].join('\n'), bindings: [], }) } finally { Buffer.concat = realConcat } expect(result.error).toBeUndefined() expect(result.logs.at(-1)).toBe(logTruncationMarker(3072)) // Charged at 3, the residual flushes around 1024 raw bytes; the largest // merged buffer stays well under 2048. A raw-byte undercount would let it // reach ~3072 before flushing, so 2048 discriminates. expect(maxConcat).toBeLessThan(2048) }) it('charges a structurally-valid but illegal UTF-8 sequence its U+FFFD-decoded cost', async () => { // A CESU-8 lone surrogate `ED A0 80` is structurally well-formed (a 3-byte // lead plus two 0x80–0xBF continuations) but ILLEGAL: `toString('utf8')` // renders each of the three bytes as its own U+FFFD (serialized cost 9), not // one width-3 character. The newline-free flush trigger weighs the residual // through `accrueStrayCost`, which must validate each lead's // first-continuation range (ED excludes A0–BF) and charge the true 9 — else a // CESU flood undercounts 3x and the residual grows toward a full budget's raw // bytes before flushing, the same peak-memory vector as the 0xFF case. The // bytes are written one at a time (each its own `data` chunk, no pipe // coalescing) and `Buffer.concat` is wrapped to measure the peak residual. const realConcat = Buffer.concat.bind(Buffer) let maxConcat = 0 Buffer.concat = (list: readonly Uint8Array[], total?: number): Buffer => { const merged = realConcat(list, total) if (merged.length > maxConcat) maxConcat = merged.length return merged } let result: CodeRunResult try { const { runtime } = await setup({ maxLogBytes: 3072, maxWallMs: 30_000 }) result = await runtime.run({ program: [ 'import os', 'seq = (0xed, 0xa0, 0x80)', 'for _ in range(2000):', ' for b in seq:', ' os.write(1, bytes((b,)))', ' os.sched_yield()', 'return None', ].join('\n'), bindings: [], }) } finally { Buffer.concat = realConcat } expect(result.error).toBeUndefined() expect(result.logs.at(-1)).toBe(logTruncationMarker(3072)) // Each 3-byte sequence costs 9 (three U+FFFD), so single-byte-paced the // residual crosses the 3072 budget after ~342 raw bytes and flushes; the // largest merged buffer stays well under 2048. Charging the structural width // 3 would need ~1024 raw bytes, tripling the peak past 2048. expect(maxConcat).toBeLessThan(2048) }) it('charges a lone surrogate its full six escaped bytes, not three', async () => { // A forged `log` frame carrying `\ud800` escapes materializes lone // surrogates after JSON.parse. `Buffer.byteLength` of U+FFFD is 3, but // ES2019 well-formed `JSON.stringify` emits `\ud800` at 6 bytes, so charging // the raw width would admit ~2x the configured budget of serialized bytes // (the same family as the NUL-flood undercount, at 2x rather than 6x). The // cost walker charges surrogates the full 6, so a flood truncates at budget. // Forged on fd 3 because Python stdout will not emit lone surrogates. const { runtime } = await setup({ maxLogBytes: 4096 }) const result = await runtime.run({ program: [ 'import os', // 1000 \ud800 escapes: charged at the buggy raw width 1000 * 3 = 3000 // bytes fits under 4096 (wrongly admitted), but the correct serialized // width 1000 * 6 = 6000 bytes is over budget — so the ledger must // truncate. The count sits in the 683..1365 window where the two // chargings disagree, making the test discriminate. String.raw`frame = b'{"type":"log","text":"' + b'\\ud800' * 1000 + b'"}\n'`, 'os.write(3, frame)', 'return None', ].join('\n'), bindings: [], }) expect(result.error).toBeUndefined() expect(result.logs.at(-1)).toBe(logTruncationMarker(4096)) }) it('drops a second stray line in the same chunk once the first truncated the ledger', async () => { // One `os.write` carrying two newline-terminated lines where the first // exhausts maxLogBytes: the first line's admit truncates and marks the // ledger, and the second line's admit — reached in the same `data` callback // — must be the post-truncation no-op. Proves that branch is exercised, so // it carries no v8-ignore. Kept to 108 bytes (< the smallest PIPE_BUF, 512 on // macOS) so the whole payload lands in ONE atomic write and one `data` // callback — the two newlines cannot split across callbacks and leave the // branch un-exercised, which would be a hard-to-attribute per-file coverage // flake. The first line's 100 bytes already exceed the 64-byte budget, so it truncates. const { runtime } = await setup({ maxLogBytes: 64 }) const result = await runtime.run({ program: ['import os', 'os.write(1, b"A" * 100 + b"\\nSECOND\\n")', 'return None'].join('\n'), bindings: [], }) expect(result.error).toBeUndefined() expect(result.logs.at(-1)).toBe(logTruncationMarker(64)) expect(result.logs.join('\n')).not.toContain('SECOND') }) it('charges a broken multibyte sequence its U+FFFD bytes, split across pipe chunks', async () => { // A 3-byte lead (0xE4) whose continuation never arrives — the next byte is a // fresh ASCII 'A' — must be costed as U+FFFD (3) for the orphaned lead, not // folded into a phantom character. Driven byte-by-byte so the lead and the // breaking byte land in separate `data` chunks, exercising accrueStrayCost's // cross-chunk broken-sequence branch. The run completes and the bytes are // captured (rendered U+FFFD by toString), proving the walk resynchronizes. const { runtime } = await setup({ maxLogBytes: 1024 }) const result = await runtime.run({ program: [ 'import os', 'os.write(1, b"\\xe4")', 'os.sched_yield()', 'os.write(1, b"A\\n")', 'return None', ].join('\n'), bindings: [], }) expect(result.error).toBeUndefined() expect(result.logs.join('')).toContain('A') expect(result.logs.join('')).toContain('�') }) it('charges the exact serialized cost of short-escape and quote/backslash characters', async () => { // Exercises every branch of jsonStringCostUpTo's per-character cost: a tab // and other C0 controls with short JSON forms (\t etc., 2 bytes), a quote // and backslash (2 bytes each), a `\uXXXX` control (6 bytes), a multibyte // BMP character (raw UTF-8 width), and plain ASCII. Under a budget large // enough to admit it, the line survives verbatim — proving the cost walker // does not over- or under-charge and the string round-trips unescaped. const { runtime } = await setup({ maxLogBytes: 4096 }) const result = await runtime.run({ program: ['import os', String.raw`os.write(1, "\ta\"b\\c\x01é\n".encode("utf-8"))`, 'return None'].join('\n'), bindings: [], }) expect(result.error).toBeUndefined() expect(result.logs).toEqual(['\ta"b\\c\x01é']) }) it('fails a completion dict with a non-string key as invalid-output (no key coercion)', async () => { // json.dumps would coerce {1: "a", "1": "b"} to a single "1" key, silently // dropping data. The shape validator rejects it before encoding. const { runtime } = await setup() const result = await runtime.run({ program: 'return {1: "first", "1": "second"}', bindings: [], }) expect(result.value).toBeUndefined() expect(result.error?.kind).toBe('invalid-output') expect(result.error?.message).toContain('non-string dict key') }) it('rejects a binding argument with a non-string dict key before dispatch', async () => { const { runtime } = await setup() let called = false const result = await runtime.run({ program: [ 'caught = ""', 'try:', ' await tools.sink({1: "x"})', 'except RuntimeError as e:', ' caught = str(e)', 'return caught', ].join('\n'), bindings: tools({ sink: async () => { called = true; return null } }), }) expect(result.error).toBeUndefined() expect(result.value).toContain('lossless JSON') expect(called).toBe(false) }) it('fails a non-JSON completion value as invalid-output (no repr substitution)', async () => { // A set is not lossless JSON. The old draft substituted repr(); the seam // now requires refusing the run instead. const { runtime } = await setup() const result = await runtime.run({ program: 'return {1, 2, 3}', bindings: [], }) expect(result.value).toBeUndefined() expect(result.error?.kind).toBe('invalid-output') expect(result.error?.message).toContain('lossless JSON') expect(result.error?.message).toContain('set') }) it('fails a negative-zero completion value as invalid-output (sign bit is lossy over JSON)', async () => { // JSON serialization turns -0.0 into 0 (or JS -0), silently changing the // sign bit; the canonical lossless-JSON boundary rejects it, so the // Python side must too — as a completion and as a binding argument. const { runtime } = await setup() const completion = await runtime.run({ program: 'return -0.0', bindings: [], }) expect(completion.error?.kind).toBe('invalid-output') expect(completion.error?.message).toContain('negative zero') const argument = await runtime.run({ program: [ 'try:', ' await tools.echo(-0.0)', ' return "accepted"', 'except RuntimeError as e:', ' return str(e)', ].join('\n'), bindings: tools({ echo: async args => args as never }), }) expect(argument.error).toBeUndefined() expect(argument.value).toContain('negative zero') }) it('fails a NaN completion value as invalid-output (allow_nan=False)', async () => { // json.dumps would happily emit NaN by default, but NaN is not JSON; the // bootstrap passes allow_nan=False so it fails as invalid-output. const { runtime } = await setup() const result = await runtime.run({ program: 'return float("nan")', bindings: [], }) expect(result.error?.kind).toBe('invalid-output') }) it('fails an over-budget completion value as output-limit (child-side check)', async () => { const { runtime } = await setup({ maxValueBytes: 64 }) const result = await runtime.run({ program: 'return "V" * 5000', bindings: [], }) expect(result.value).toBeUndefined() expect(result.error?.kind).toBe('output-limit') expect(result.error?.message).toContain('exceeded 64 bytes') }) it('meters a control-heavy completion value without materializing its escaped form', async () => { // The child's lower bound admits a string by CHARACTER count, then the meter // charged what `_dump_string(current).encode()` returned -- building the // escaped copy plus its encode. Each NUL escapes to six bytes, so metering a // value the budget then REJECTS allocated ~6x the original twice over: // measured at 228.9 MiB of peak for a 20M-NUL string, against 19.1 MiB for // the counting path that returns the identical 120,000,002 bytes. Past // RLIMIT_AS the meter died as `exception: MemoryError`, inverting the // `output-limit` this seam promises for an over-budget value. // // 8M NULs is 8,000,002 raw but 48,000,002 escaped: over the 16 MiB budget // only when charged the escaped cost, so this also pins that the cheap // character bound alone does not decide the verdict. const { runtime } = await setup({ maxValueBytes: 16 * 1024 * 1024, maxWallMs: 60_000 }) const result = await runtime.run({ program: 'return "\\x00" * 8_000_000', bindings: [], }) expect(result.value).toBeUndefined() expect(result.error?.kind).toBe('output-limit') }, 90_000) it('rejects a wide completion as output-limit before materializing its traversal state', async () => { // `[0] * 2000000` sits far above maxValueBytes but well below the frame // ceiling. The folded checker must reject it via the pre-enqueue bound — // BEFORE pushing two million elements onto the walk — so a small // addressSpaceMb does not turn the check itself into an RLIMIT_AS death. const { runtime } = await setup({ maxValueBytes: 64, addressSpaceMb: 256, maxWallMs: 15_000 }) const result = await runtime.run({ program: 'return [0] * 2000000', bindings: [], }) expect(result.value).toBeUndefined() expect(result.error?.kind).toBe('output-limit') expect(result.error?.message).toContain('exceeded 64 bytes') }, 20_000) it('rejects a wide dict as output-limit without materializing its items list', async () => { // Same pre-enqueue bound on the dict branch: `len(current)` replaces // `list(current.items())`, which allocated one tuple per member before the // bound could reject the value. Two million entries under a 64-byte cap // fits the 256 MiB address space as a dict but not as a dict PLUS a // two-million-tuple list. const { runtime } = await setup({ maxValueBytes: 64, addressSpaceMb: 256, maxWallMs: 15_000 }) const result = await runtime.run({ program: 'return {str(i): 0 for i in range(2000000)}', bindings: [], }) expect(result.value).toBeUndefined() expect(result.error?.kind).toBe('output-limit') expect(result.error?.message).toContain('exceeded 64 bytes') }, 20_000) it('meters a float completion in the host\'s number spelling', async () => { // CPython's repr disagrees with the host's String(number): `1.0` is three // bytes here and one there, `1e-07` pads the exponent the host writes as // `1e-7`. Both sides meter the SAME budget, so the child must count the // bytes the host will receive — otherwise a boundary-sized value is // falsely reported as output-limit. const { runtime } = await setup({ maxValueBytes: 1 }) const integral = await runtime.run({ program: 'return 1.0', bindings: [] }) expect(integral.error).toBeUndefined() expect(integral.value).toBe(1) const exponent = await setup({ maxValueBytes: 4 }) const small = await exponent.runtime.run({ program: 'return 1e-7', bindings: [] }) expect(small.error).toBeUndefined() expect(small.value).toBe(1e-7) // The spelling is a meter input, not a licence to overshoot: `1.5` is three // bytes on both sides and still fails a two-byte budget. const tight = await setup({ maxValueBytes: 2 }) const over = await tight.runtime.run({ program: 'return 1.5', bindings: [] }) expect(over.error?.kind).toBe('output-limit') }) it('carries floats across the wire in the host\'s number spelling', async () => { // The child ENCODES with the same speller it meters with, so the frame the // host parses must reproduce every double exactly — including the branches // where CPython and ECMAScript disagree (integral floats, sub-1e-6 // exponents, >= 1e21, and beyond-safe-range integral doubles whose exact // digits differ from the shortest round-trip form). const { runtime } = await setup() const result = await runtime.run({ program: 'return [1.0, 100.0, 1.5, 0.1, 1e-7, 1e-6, 1e-5, 123.456, -2.5e-8, 1e21, float(2**60), 5e-324, 1.7976931348623157e308]', bindings: [], }) expect(result.error).toBeUndefined() expect(result.value).toEqual([1, 100, 1.5, 0.1, 1e-7, 1e-6, 1e-5, 123.456, -2.5e-8, 1e21, 2 ** 60, 5e-324, 1.7976931348623157e308]) }) it('rejects a forged non-lossless done value host-side as invalid-output', async () => { // A forged done frame bypasses the child's _check_done_value. JSON.parse // turns 1e400 into Infinity; validateChildFrame no longer scans done.value, // so the host's own checkDoneValue must catch the non-lossless number. const { runtime } = await setup() const result = await runtime.run({ program: [ 'import os', String.raw`os.write(3, b'{"type":"done","value":1e400}' + b'\n')`, 'import time', 'time.sleep(5)', ].join('\n'), bindings: [], }) expect(result.value).toBeUndefined() expect(result.error?.kind).toBe('invalid-output') expect(result.error?.message).toContain('non-lossless number') }) it('reports a syntax error as an exception without settling with a value', async () => { const { runtime } = await setup() const result = await runtime.run({ program: '$$invalid python$$', bindings: [], }) expect(result.error?.kind).toBe('exception') expect(result.error?.message).toContain('SyntaxError') // The parse-time diagnostic must carry the same source label as compile and // runtime tracebacks (ast.parse passes filename=""); a stale // "" label would leak an inconsistent origin to the model. expect(result.error?.message).toContain('File \"\"') expect(result.value).toBeUndefined() }) it('reports a runtime raise as an exception with the traceback', async () => { const { runtime } = await setup() const result = await runtime.run({ program: 'raise ValueError("intentional")', bindings: [], }) expect(result.error?.kind).toBe('exception') expect(result.error?.message).toContain('ValueError') expect(result.error?.message).toContain('intentional') }) it('bounds a deep exception cause chain instead of burning the wall budget formatting it', async () => { // A chain thousands of links deep would make the rendering walk and // format() linear in its length, consuming maxWallMs. Rendering is capped // at 100 links with a marker; the run reports the exception well within // budget rather than timing out. const { runtime } = await setup({ maxValueBytes: 1024 * 1024, maxWallMs: 20_000 }) const start = Date.now() const result = await runtime.run({ program: [ 'err = None', 'for i in range(3000):', ' try:', ' raise ValueError(i) from err', ' except ValueError as e:', ' err = e', 'raise err', ].join('\n'), bindings: [], }) expect(result.error?.kind).toBe('exception') expect(result.error?.message).toContain('exception chain truncated at 100 links') expect(Date.now() - start).toBeLessThan(15_000) }, 25_000) it('bounds an over-cap chain without assigning to the live exception', async () => { // The cap used to be applied by severing the over-cap link ON the live // exception. An exception class overriding __setattr__ to raise turned that // assignment into model code running inside the bootstrap's failure // handler; the throw skipped the `done` send that sits after the handler, // so the host blocked on fd 3 and reported a maxWallMs timeout instead of // the model's own exception. Cutting the chain on the TracebackException // COPY touches no model hook, so the marker still appears and the run // reports `exception`. const { runtime } = await setup({ maxValueBytes: 1024 * 1024, maxWallMs: 15_000 }) const start = Date.now() const result = await runtime.run({ program: [ 'class Sealed(Exception):', ' def __setattr__(self, name, value):', ' raise RuntimeError("live mutation refused")', 'err = None', 'for i in range(150):', ' try:', ' raise Sealed(i) from err', ' except Sealed as e:', ' err = e', 'raise err', ].join('\n'), bindings: [], }) expect(result.error?.kind).toBe('exception') expect(result.error?.message).toContain('Sealed') expect(result.error?.message).toContain('exception chain truncated at 100 links') // The sever attempt is what used to leak: its message must not appear, and // the run must settle well inside the wall budget rather than timing out. expect(result.error?.message).not.toContain('live mutation refused') expect(Date.now() - start).toBeLessThan(10_000) }, 20_000) it('still sends done when rendering the diagnostic itself raises', async () => { // format() reaches the exception's own __str__, so a model class whose // __str__ raises can throw from inside the failure handler. CPython's // _safe_string absorbs a raising __str__ during formatting, but the // fallback must hold for any throw on that path (a raising __repr__ of an // argument, a MemoryError under RLIMIT_AS), so the assertion is the // invariant that matters: a `done` frame carrying `exception`, never a // timeout, and never the failing renderer's own message. const { runtime } = await setup({ maxWallMs: 10_000 }) const result = await runtime.run({ program: [ 'class Unprintable(Exception):', ' def __str__(self):', ' raise RuntimeError("str refused")', ' def __repr__(self):', ' raise RuntimeError("repr refused")', 'raise Unprintable()', ].join('\n'), bindings: [], }) expect(result.error?.kind).toBe('exception') expect(result.error?.message).toContain('Unprintable') expect(result.error?.message).not.toContain('str refused') expect(result.error?.message).not.toContain('repr refused') }, 15_000) it('sends done with an inert diagnostic when the whole rendering path raises', async () => { // Drive the fallback itself. `TracebackException.format` reads the // exception class's `__module__` to decide whether to qualify the name, and // a metaclass property can raise there — a throw INSIDE the formatter, // reached with no rebinding of anything the bootstrap owns. Without the // wrapper it escapes the handler, the `done` send never runs, and the host // times out at maxWallMs. const { runtime } = await setup({ maxWallMs: 10_000 }) const result = await runtime.run({ program: [ 'class Meta(type):', ' @property', ' def __module__(cls):', ' raise RuntimeError("renderer refused")', 'class Hostile(ValueError, metaclass=Meta):', ' pass', 'raise Hostile("original failure")', ].join('\n'), bindings: [], }) expect(result.error?.kind).toBe('exception') // The inert fallback names the class and a fixed literal; it must not carry // the renderer's message, and must not have become a timeout. `__name__` is // still a plain str here, so the class name survives. expect(result.error?.message).toBe('Hostile: ') }, 15_000) it('falls back to a placeholder class name when __name__ itself raises', async () => { // The fallback reads type(exc).__name__, which a metaclass property can // hijack. It must neither run that override's failure into the handler nor // format a non-str __name__ into the message. The hostile `__module__` is // what drives execution into the fallback in the first place. const { runtime } = await setup({ maxWallMs: 10_000 }) const result = await runtime.run({ program: [ 'class Meta(type):', ' @property', ' def __module__(cls):', ' raise RuntimeError("renderer refused")', ' @property', ' def __name__(cls):', ' raise RuntimeError("name refused")', 'class Nameless(Exception, metaclass=Meta):', ' pass', 'raise Nameless()', ].join('\n'), bindings: [], }) expect(result.error?.kind).toBe('exception') expect(result.error?.message).toBe(': ') }, 15_000) it('reports the real exception when the program rebinds every name the failure path uses', async () => { // The bootstrap IS __main__, so `import __main__; __main__._X = ...` reaches // any module global a call-time lookup would read. The failure path is the // worst place for that: the reporter, the byte cap, the traceback formatter, // the settlement flush and the `done` send all run AFTER the `except` block, // so a replacement that raises skips the send, leaves the host blocked on // fd 3, and the run reports a maxWallMs timeout instead of the model's own // exception. Rebind all of them at once; the run must still carry the real // ValueError. const { runtime } = await setup({ maxWallMs: 10_000 }) const result = await runtime.run({ program: [ 'import __main__', 'def boom(*a, **k):', ' raise RuntimeError("hijacked")', '__main__._SAFE_MODEL_TRACEBACK = boom', '__main__._cap_message = boom', '__main__._model_traceback = boom', '__main__._UNRENDERABLE_DIAGNOSTIC = boom', '__main__._LogStream.flush_line = boom', // `send_done` writes via LOCALLY-BOUND `_encode_json_plain` + // `ProtocolChannel.write_encoded`; rebinding these at call time must not // redirect the done frame (a late lookup would be `boom` -> worker-exit). '__main__.ProtocolChannel.send_sync = boom', '__main__.ProtocolChannel.write_encoded = boom', '__main__._encode_json_plain = boom', 'raise ValueError("real failure")', ].join('\n'), bindings: [], }) expect(result.error?.kind).toBe('exception') expect(result.error?.message).toContain('ValueError: real failure') expect(result.error?.message).not.toContain('hijacked') }, 15_000) it('still delivers a done frame when a transitive encode name is rebound', async () => { // `send_done` binds `_encode_json_plain` and `ProtocolChannel.write_encoded` // into locals, but those callables' BODIES still resolve transitive module // globals at call time: `_encode_json_plain` reaches `_dump_scalar`/`_dump_string`/ // `json.dumps`, and `write_encoded` reaches `os.write`. This bootstrap is // `__main__`, so rebinding `__main__._dump_scalar` to a raising function makes // the error-frame encode throw AFTER the `except` block. `send_done` catches // that and writes a fixed literal done frame (kind `exception`) with the // LOCALLY-BOUND `_os_write`/`_memoryview`/`_FALLBACK_DONE_FRAME` captured // before the program runs, so the host still gets a verdict — the run must be an // `exception`, never a `worker-exit`. The real message is lost (the literal // carries a fixed `` text), which is acceptable: the verdict // outranks the diagnostic detail. const { runtime } = await setup({ maxWallMs: 10_000 }) const result = await runtime.run({ program: [ 'import __main__', 'def boom(*a, **k):', ' raise RuntimeError("hijacked")', '__main__._dump_scalar = boom', '__main__.os = boom', // The fallback must also survive a rebind of its own primitives. '__main__._os_write = boom', '__main__._memoryview = boom', '__main__._FALLBACK_DONE_FRAME = boom', 'raise ValueError("real failure")', ].join('\n'), bindings: [], }) expect(result.error?.kind).toBe('exception') expect(result.error?.kind).not.toBe('worker-exit') }, 15_000) it('still reports a model exception when the program rebinds BaseException', async () => { // `_run`'s outer try/except catches the program's failure and builds a // `done` frame. The clause previously used the module-global `BaseException`, // which the program (running as `__main__`) can rebind: `__main__.BaseException // = RuntimeError` makes the `except BaseException` resolve to `RuntimeError`, // so a subsequent `ValueError` does not match and escapes `_run` with no // `done` frame — misreporting the run as a `worker-exit`. The exception class // is now bound into a `_run` LOCAL before the program runs, so the rebind // cannot change which class the clause catches; the run must still report an // `exception`, not a `worker-exit`. const { runtime } = await setup({ maxWallMs: 10_000 }) const result = await runtime.run({ program: [ 'import __main__', '__main__.BaseException = RuntimeError', 'raise ValueError("real failure")', ].join('\n'), bindings: [], }) expect(result.error?.kind).toBe('exception') expect(result.error?.kind).not.toBe('worker-exit') }, 15_000) it('still reports the exception when BaseException and the traceback reporter are rebound together', async () => { // The two rebind families compose: `__main__.BaseException = ValueError` // must not change which class the `_run` catch resolves (it is a pre-program // local), and a rebound reporter (`_SAFE_MODEL_TRACEBACK`/`_cap_message`/ // `_model_traceback`/`_UNRENDERABLE_DIAGNOSTIC`) must not break the done // frame — `safe_model_traceback` holds its primitives as import-time closure // cells. A `KeyError` (not a `ValueError` subclass) escapes a catch that // resolves to the rebound class, so without the local binding the run would // misreport as `worker-exit`; with it, the run reports the exception and the // fallback reporter still produces the fixed literal. const { runtime } = await setup({ maxWallMs: 10_000 }) const result = await runtime.run({ program: [ 'import __main__', 'def boom(*a, **k):', ' raise RuntimeError("hijacked")', '__main__.BaseException = ValueError', '__main__._SAFE_MODEL_TRACEBACK = boom', '__main__._cap_message = boom', '__main__._model_traceback = boom', '__main__._UNRENDERABLE_DIAGNOSTIC = boom', 'raise KeyError("real failure")', ].join('\n'), bindings: [], }) expect(result.error?.kind).toBe('exception') expect(result.error?.kind).not.toBe('worker-exit') }, 15_000) it('rejects an fd-3 frame whose raw length exceeds the parse cap before joining it', async () => { // The 64 MiB frame parse cap bounds the RAW frame bytes, not the decoded // structure; a compact wide frame near that ceiling could decode to far // more host memory. The unframed-buffer counter is checked against // FRAME_PARSE_CAP_BYTES BEFORE the Buffer.concat join, so an oversized // frame is dropped at one copy of its wire bytes instead of being fully // joined (a second copy) and only then discarded in the line loop — the // peak-memory doubling the pre-join check exists to prevent. Fail-before: // without the check the frame is joined whole and parsed (its log text // admitted, truncating the ledger), and the run completes normally. const { runtime } = await setup({ maxWallMs: 60_000 }) const result = await runtime.run({ program: [ 'import os', // One frame just past the 64 MiB parse cap. 'os.write(3, b"{\\"type\\":\\"log\\",\\"text\\":\\"" + b"a" * (65 * 1024 * 1024) + b"\\"}\\n")', 'return "done"', ].join('\n'), bindings: [], }) expect(result.error?.kind).toBe('worker-exit') expect(result.error?.message).toContain('protocol frame exceeded') }, 90_000) it('caps an oversized rejection diagnostic so an invalid completion stays invalid-output', async () => { // _done_with_value caps its rejection diagnostic through _cap_message: a // hostile class name (huge type(value).__name__) would otherwise push the // done frame past the host's 64 MiB parse cap, misreporting an // invalid-output run as a worker-exit. The diagnostic is capped to the // value budget, so the frame always crosses the parser. const { runtime } = await setup({ maxWallMs: 60_000 }) const result = await runtime.run({ program: [ 'return type("N" * (70 * 1024 * 1024), (), {})()', ].join('\n'), bindings: [], }) expect(result.error?.kind).toBe('invalid-output') expect(result.error?.kind).not.toBe('worker-exit') }, 90_000) it('appends a flushed unterminated line to the next entry without a fake newline', async () => { // An explicit flush of an unterminated line (print(..., end='', flush=True)) // used to push a full log frame, so the following print() landed in a // SECOND entry and logs.join('\n') rendered 'a\nb' for what the program // printed as one line. The flush frame now carries `open: true` and the // host appends the next frame to the same entry. const { runtime } = await setup() const result = await runtime.run({ program: [ "print('a', end='', flush=True)", "print('b')", 'return "done"', ].join('\n'), bindings: [], }) expect(result.error).toBeUndefined() expect(result.logs).toEqual(['ab']) }, 15_000) it('keeps a SEALED open hold when the run ends with it still open', async () => { // The finish-residual's sealed side: an open hold past MAX_PENDING_CHUNKS // lands in openSealed, and the run ends without a closing frame — finish() // must commit the SEALED prefix, not only the current fragments. const { runtime } = await setup({ maxLogBytes: 65536 }) const result = await runtime.run({ program: [ 'import os', "os.write(3, b'{\"type\":\"log\",\"text\":\"x\",\"open\":true}\\n')", 'for _ in range(3000):', " os.write(3, b'{\"type\":\"log\",\"text\":\"a\",\"open\":true}\\n')", 'return "done"', ].join('\n'), bindings: [], }) expect(result.error).toBeUndefined() expect(result.logs).toEqual(['x' + 'a'.repeat(3000)]) }, 15_000) it('keeps a flushed unterminated line when the run ends with it still open', async () => { // The settlement flush pushes the residual with `open: true`; finish() // admits it so a program that commits a partial line and returns does not // lose it from logs. const { runtime } = await setup() const result = await runtime.run({ program: [ "print('committed', end='', flush=True)", 'return "done"', ].join('\n'), bindings: [], }) expect(result.error).toBeUndefined() expect(result.logs).toEqual(['committed']) }, 15_000) it('skips the hold for a zero-content open continuation', async () => { // An empty open continuation bills 0 and is NOT pushed into the held // fragment array (an empty fragment contributes nothing to the merged // entry, and holding it would let a forged empty-open flood grow host // memory without touching the ledger). const { runtime } = await setup({ maxLogBytes: 64 }) const result = await runtime.run({ program: [ 'import os', "os.write(3, b'{\"type\":\"log\",\"text\":\"x\",\"open\":true}\\n')", "os.write(3, b'{\"type\":\"log\",\"text\":\"\",\"open\":true}\\n')", "os.write(3, b'{\"type\":\"log\",\"text\":\"y\"}\\n')", 'return "done"', ].join('\n'), bindings: [], }) expect(result.error).toBeUndefined() expect(result.logs).toEqual(['xy']) }, 15_000) it('seals the open hold past MAX_PENDING_CHUNKS without changing the merged entry', async () => { // A budget-sized single-character open flood would otherwise accumulate // thousands of fragment array slots (each a slot plus string header, ~30x // overhead the byte cap cannot see). The hold seals into one block past // MAX_PENDING_CHUNKS; the merged entry is byte-identical. const { runtime } = await setup({ maxLogBytes: 65536 }) const result = await runtime.run({ program: [ 'import os', "os.write(3, b'{\"type\":\"log\",\"text\":\"x\",\"open\":true}\\n')", // 3000 single-character open continuations (over MAX_PENDING_CHUNKS). 'for _ in range(3000):', " os.write(3, b'{\"type\":\"log\",\"text\":\"a\",\"open\":true}\\n')", "os.write(3, b'{\"type\":\"log\",\"text\":\"y\"}\\n')", 'return "done"', ].join('\n'), bindings: [], }) expect(result.error).toBeUndefined() expect(result.logs).toEqual(['x' + 'a'.repeat(3000) + 'y']) }, 15_000) it('bounds a forged open-frame flood against the log budget', async () => { // The open hold must be bounded by the ledger: without the exact-cost check // a forged open flood would grow the held fragment without touching // logBudget — unbounded host retention under a small budget. The flood now // truncates to the marker like any over-budget log traffic. const { runtime } = await setup({ maxLogBytes: 64 }) const result = await runtime.run({ program: [ 'import os', // 2000 forged open frames, each under the frame parse cap. 'for _ in range(2000):', " os.write(3, b'{\"type\":\"log\",\"text\":\"a\",\"open\":true}\\n')", 'return "done"', ].join('\n'), bindings: [], }) expect(result.error).toBeUndefined() expect(result.logs).toEqual(['a'.repeat(60), logTruncationMarker(64)]) }, 15_000) it('commits a sealed open hold before the truncation marker', async () => { // The sealed variant of the prefix-commit case: an open flood past // MAX_PENDING_CHUNKS lands in openSealed, then an over-budget line // truncates — truncateLogs must commit the SEALED prefix (not only the // current fragments) before the marker. const { runtime } = await setup({ maxLogBytes: 65536 }) const result = await runtime.run({ program: [ 'import os', "os.write(3, b'{\"type\":\"log\",\"text\":\"x\",\"open\":true}\\n')", // 3000 single-character open continuations seal the hold, then a // forged over-budget open frame trips the ledger: truncateLogs must // commit the SEALED prefix before the marker. 'for _ in range(3000):', " os.write(3, b'{\"type\":\"log\",\"text\":\"a\",\"open\":true}\\n')", "os.write(3, ('{\"type\":\"log\",\"text\":\"' + 'z' * 70000 + '\",\"open\":true}\\n').encode())", 'return "done"', ].join('\n'), bindings: [], }) expect(result.error).toBeUndefined() expect(result.logs[0]).toBe('x' + 'a'.repeat(3000)) expect(result.logs[result.logs.length - 1]).toBe(logTruncationMarker(65536)) }, 15_000) it('commits a flushed open prefix before the truncation marker', async () => { // A flushed unterminated line is billed and committed; when a later // over-budget write truncates, the committed prefix must appear BEFORE the // marker — the ledger charged for it, so it cannot vanish. const { runtime } = await setup({ maxLogBytes: 64 }) const result = await runtime.run({ program: [ "print('committed', end='', flush=True)", "print('x' * 100)", 'return "done"', ].join('\n'), bindings: [], }) expect(result.error).toBeUndefined() expect(result.logs).toEqual(['committed', logTruncationMarker(64)]) }, 15_000) it('drops a forged fd-3 frame with illegal UTF-8 instead of accepting a mangled value', async () => { // toString('utf8') would replace the illegal 0xFF with U+FFFD, so a forged // done frame could land a corrupted completion value; the fatal decode // throws and the frame is dropped. The program's real return still settles // the run with the honest value. const { runtime } = await setup() const result = await runtime.run({ program: [ 'import os', "os.write(3, b'{\"type\":\"done\",\"value\":\"bad' + bytes([0xFF]) + b'\"}\\n')", 'return "ok"', ].join('\n'), bindings: [], }) expect(result.error).toBeUndefined() expect(result.value).toBe('ok') }, 15_000) it('no-ops a closing frame once an open flood already truncated the ledger', async () => { // The closing-frame branch's post-truncation arm: an open flood exhausts // the ledger (logsTruncated set, marker pushed), then a closing frame // arrives — it must be a no-op, not append content past the marker. const { runtime } = await setup({ maxLogBytes: 64 }) const result = await runtime.run({ program: [ 'import os', 'for _ in range(2000):', " os.write(3, b'{\"type\":\"log\",\"text\":\"a\",\"open\":true}\\n')", "os.write(3, b'{\"type\":\"log\",\"text\":\"b\"}\\n')", 'return "done"', ].join('\n'), bindings: [], }) expect(result.error).toBeUndefined() expect(result.logs).toEqual(['a'.repeat(60), logTruncationMarker(64)]) }, 15_000) it('bills a merged open entry once, not per fragment', async () => { // A merged entry's wire cost is billed ONCE, split across its fragments // (first fragment pays quotes+separator, continuations pay only content). // Under maxLogBytes: 64, 16 single-character flushes merge to one 16-char // entry (2 quotes + 16 content + 1 separator = 19), which fits; per- // fragment billing (each charged quotes+separator, ~4 bytes) would truncate // at 16 x 4 = 64. const { runtime } = await setup({ maxLogBytes: 64 }) const result = await runtime.run({ program: [ 'for _ in range(16):', " print('x', end='', flush=True)", "print('')", 'return "done"', ].join('\n'), bindings: [], }) expect(result.error).toBeUndefined() expect(result.logs).toEqual(['x'.repeat(16)]) }, 15_000) it('admits a compliant merged entry whose closing frame fits the remaining budget', async () => { // The review's arithmetic check: print('a'*30, flush); print('b'*25) under // maxLogBytes: 64 has a merged wire cost of 2 quotes + 55 content + 1 // separator = 58 <= 63, so it MUST be admitted as one entry. The earlier // cap math (logBudget - openCost) made the closing frame's walk see a // negative cap and truncate a compliant entry. const { runtime } = await setup({ maxLogBytes: 64 }) const result = await runtime.run({ program: [ "print('a' * 30, end='', flush=True)", "print('b' * 25)", 'return "done"', ].join('\n'), bindings: [], }) expect(result.error).toBeUndefined() expect(result.logs).toEqual(['a'.repeat(30) + 'b'.repeat(25)]) }, 15_000) it('rejects an open frame that would overflow the ledger by one byte', async () => { // The review's arithmetic check: an open frame whose full JSON cost is 63 // (maxLogBytes: 64 -> ledger 63) must be rejected by the first-fragment // cap logBudget - 1 (62), not admitted with a bill of 64 that pushes the // ledger negative. The frame is FORGED on fd 3 so the child ledger cannot // truncate first: a reverted cap of logBudget (63) would admit the frame, // hold it, and flush it at settlement, so the marker assertion fails. const { runtime } = await setup({ maxLogBytes: 64 }) const result = await runtime.run({ program: [ 'import os', "os.write(3, ('{\"type\":\"log\",\"text\":\"' + 'x' * 61 + '\",\"open\":true}\\n').encode())", 'return "done"', ].join('\n'), bindings: [], }) expect(result.error).toBeUndefined() expect(result.logs).toEqual([logTruncationMarker(64)]) }, 15_000) it('bills the closing frame as the merged tail under an exact-fit budget', async () => { // The child's split billing: a 30-char open + a 30-char closing frame cost // 2 + 60 + 1 = 63 = ledger 63 exactly; the closing frame must be billed as // the merged tail (content only), not as a fresh entry (which would // double-charge the quotes+separator and truncate an exact-fit entry). const { runtime } = await setup({ maxLogBytes: 64 }) const result = await runtime.run({ program: [ "print('a' * 30, end='', flush=True)", "print('b' * 30)", 'return "done"', ].join('\n'), bindings: [], }) expect(result.error).toBeUndefined() expect(result.logs).toEqual(['a'.repeat(30) + 'b'.repeat(30)]) }, 15_000) it('does not over-reject an exact-fit closing line while an open entry accumulates', async () => { // The write-path pre-check's cheap bound used +3 (quotes + separator) even // while an open entry was accumulating, so an exact-fit merged TAIL was // truncated. The recipe below goes through the SCAN pre-check (the // newline-terminated write arrives with an empty pending buffer, so the // buffered-chunks branch is skipped): 'a'*29 flush bills 32 (ledger 31 // left), then one write of 'b'*30 + newline merges 30 more chars whose // cheap bound is 30, not 33 — the +3 form saw 30 + 3 = 33 > 31, sliced to // a budget prefix, and pushed past the ledger, emitting the marker for a // line that fits (merged cost 2 + 59 + 1 = 62 <= 63). const { runtime } = await setup({ maxLogBytes: 64 }) const result = await runtime.run({ program: [ 'import sys', "sys.stdout.write('a' * 29)", 'sys.stdout.flush()', "sys.stdout.write('b' * 30 + chr(10))", 'return "done"', ].join('\n'), bindings: [], }) expect(result.error).toBeUndefined() expect(result.logs).toEqual(['a'.repeat(29) + 'b'.repeat(30)]) }, 15_000) it('rejects a new open entry once the ledger has only two bytes left', async () => { // The jsonStringCostUpTo sub-2-byte guard: forged open frames drive the // host ledger down to 1 byte, then a new open entry's first-fragment cap // (logBudget - 1 = 0) trips the guard and truncates. const { runtime } = await setup({ maxLogBytes: 64 }) const result = await runtime.run({ program: [ 'import os', "os.write(3, ('{\"type\":\"log\",\"text\":\"' + 'a' * 28 + '\",\"open\":true}\\n').encode())", "os.write(3, ('{\"type\":\"log\",\"text\":\"' + 'a' * 31 + '\"}\\n').encode())", "os.write(3, b'{\"type\":\"log\",\"text\":\"x\",\"open\":true}\\n')", 'return "done"', ].join('\n'), bindings: [], }) expect(result.error).toBeUndefined() expect(result.logs).toEqual(['a'.repeat(59), logTruncationMarker(64)]) }, 15_000) it('truncates when the closing frame of a merged entry overflows the budget', async () => { // The merged entry's billed-once cost: an open fragment that nearly // exhausts the budget, then a closing frame whose content no longer fits — // the closing frame's exact-cost walk trips and the marker replaces the // entry, exactly like any other over-budget log traffic. const { runtime } = await setup({ maxLogBytes: 64 }) const result = await runtime.run({ program: [ "print('x' * 40, end='', flush=True)", "print('y' * 40)", 'return "done"', ].join('\n'), bindings: [], }) expect(result.error).toBeUndefined() expect(result.logs).toEqual(['x'.repeat(40), logTruncationMarker(64)]) }, 15_000) it('keeps a float completion exact when the program mutates the decimal context', async () => { // The float encoder's Decimal(repr(value)).normalize() used the process // GLOBAL decimal context: a legitimate program setting // `getcontext().prec = 2` silently rounded the completion value's digits, // and `traps[Inexact] = True` made the encode raise, misclassifying a // successful run as an exception. A fixed module-level Context(prec=28) // makes the spelling decision context-independent. const { runtime } = await setup() const result = await runtime.run({ program: [ 'from decimal import getcontext', 'getcontext().prec = 2', 'getcontext().traps[__import__("decimal").Inexact] = True', 'return 1.2345678901234567', ].join('\n'), bindings: [], }) expect(result.error).toBeUndefined() expect(result.value).toBe(1.2345678901234567) }, 15_000) it('bounds an over-cap exception-group nesting on the copy', async () => { // Exception groups link through `exceptions`, not the cause/context // dunders, so the cap has to count that edge too — otherwise a deeply // nested group walks past the bound the marker claims to enforce. const { runtime } = await setup({ maxValueBytes: 1024 * 1024, maxWallMs: 15_000 }) const result = await runtime.run({ program: [ 'import sys', // ExceptionGroup is a 3.11+ builtin; on 3.10 the NameError is the // failure mode being probed, so skip to keep the assertion meaningful. 'if sys.version_info < (3, 11):', ' raise ValueError("skip-old ")', 'group = ValueError("leaf")', 'for i in range(150):', ' group = ExceptionGroup(f"g{i}", [group])', 'raise group', ].join('\n'), bindings: [], }) expect(result.error?.kind).toBe('exception') // The version guard skips on Python < 3.11 (ExceptionGroup is a 3.11+ // builtin) with a distinct message; the truncation assertion applies on // 3.11+ where the group nesting is what is being probed. expect(result.error?.message).toMatch(/exception chain truncated at 100 links|skip-old/) }, 20_000) it('filters every bootstrap frame from the traceback of an uncaught binding rejection', async () => { // A rejection re-raised by the bootstrap's dispatch adds bootstrap frames // AFTER the model's own; only frames may reach model-visible, // durable output — a bootstrap.py path would leak host absolutes and make // transcripts machine-dependent. const { runtime } = await setup() const result = await runtime.run({ program: 'await tools.boom({})', bindings: tools({ boom: async () => { throw new Error('exploded') } }), }) expect(result.error?.kind).toBe('exception') expect(result.error?.message).toContain('exploded') expect(result.error?.message).toContain('') expect(result.error?.message).not.toContain('bootstrap.py') }) it('renders a non-Error thrown value from a host binding as its String form', async () => { const { runtime } = await setup() const result = await runtime.run({ program: [ 'caught = ""', 'try:', ' await tools.failRaw({})', 'except RuntimeError as e:', ' caught = str(e)', 'return caught', ].join('\n'), bindings: tools({ failRaw: async () => { throw 'raw-nope' }, }), }) expect(result.error).toBeUndefined() expect(result.value).toContain('raw-nope') }) it('reassembles a frame split across writes behind a completed one', async () => { // One os.write carrying "\n" leaves a non-empty // residual after the newline loop; the tail must survive until its own // newline arrives and then parse as a normal frame. const { runtime } = await setup() const result = await runtime.run({ program: [ 'import os, json', 'head = json.dumps({"type":"log","text":"first"}).encode()', 'tail = json.dumps({"type":"log","text":"second"}).encode()', 'import time', 'os.write(3, head + b"\\n" + tail[:5])', 'time.sleep(0.2)', 'os.write(3, tail[5:] + b"\\n")', 'return "ok"', ].join('\n'), bindings: [], }) expect(result.error).toBeUndefined() expect(result.value).toBe('ok') expect(result.logs).toContain('first') expect(result.logs).toContain('second') }) it('raises the declared errorClass with the member name on rejection', async () => { // PTC mode declares { name: ToolCallError, memberNameProperty: toolName }; // a host rejection must surface as that class, carrying the failed tool. const { runtime } = await setup() const result = await runtime.run({ program: [ 'caught = ""', 'try:', ' await tools.fail({})', 'except ToolCallError as e:', ' caught = f"{type(e).__name__}:{e.toolName}:{e}"', 'return caught', ].join('\n'), bindings: [{ global: 'tools', functions: { fail: async () => { throw new Error('typed-nope') } }, errorClass: { name: 'ToolCallError', memberNameProperty: 'toolName' }, }], }) expect(result.error).toBeUndefined() expect(result.value).toBe('ToolCallError:fail:typed-nope') }) it('keeps the declared error class catching when Exception and setattr are rebound', async () => { // _make_error_class's minted __init__ def-time captures Exception and // setattr, so a program rebinding __main__.Exception/__main__.setattr // cannot break the rejection constructor: `except ToolCallError` must still // catch and read the member property. const { runtime } = await setup() const result = await runtime.run({ program: [ 'import __main__', 'def boom(*a, **k):', ' raise RuntimeError("hijacked")', '__main__.Exception = boom', '__main__.setattr = boom', 'caught = ""', 'try:', ' await tools.fail({})', 'except ToolCallError as e:', ' caught = f"{type(e).__name__}:{e.toolName}"', 'return caught', ].join('\n'), bindings: [{ global: 'tools', functions: { fail: async () => { throw new Error('typed-nope') } }, errorClass: { name: 'ToolCallError', memberNameProperty: 'toolName' }, }], }) expect(result.error).toBeUndefined() expect(result.value).toBe('ToolCallError:fail') }, 15_000) it('runs when errorClass metadata is exposed through one-read getters', async () => { // Validation reads errorClass.name and errorClass.memberNameProperty, and // the ORIGINAL object used to ride along to the boot frame, whose // JSON.stringify re-read it after validation: a getter that throws or // changes on a second read turned the seam-misuse rejection into a // worker-exit (or injected a different name than validation approved). // The snapshot reads each field exactly once into a plain copy, so a // getter that only tolerates one read must boot and run cleanly. let nameReads = 0 let memberReads = 0 const errorClass = { get name(): string { nameReads += 1 if (nameReads > 1) throw new Error(`errorClass.name read ${nameReads} times`) return 'ToolCallError' }, get memberNameProperty(): string { memberReads += 1 if (memberReads > 1) throw new Error(`errorClass.memberNameProperty read ${memberReads} times`) return 'toolName' }, } const { runtime } = await setup() const result = await runtime.run({ program: 'return "ok"', bindings: [{ global: 'tools', functions: {}, errorClass }], }) expect(result.error).toBeUndefined() expect(result.value).toBe('ok') expect(nameReads).toBe(1) expect(memberReads).toBe(1) }, 15_000) it('runs when the binding global is exposed through a one-read getter', async () => { // Validation reads namespace.global several times (identifier check, map // key, claim, boot frame), and the map key came from a fresh read each // time: a getter returning a different name on a later read injected a // global validation never approved, and the program referencing the // approved name died with NameError. Snapshotting reads it exactly once, // so the child must receive the name the program was written against. let globalReads = 0 const namespace = { get global(): string { globalReads += 1 return globalReads === 1 ? 'tools' : 'evil' }, functions: { echo: async (args: unknown) => args as CodeJsonValue }, } const { runtime } = await setup() const result = await runtime.run({ program: 'return await tools.echo(41)', bindings: [namespace], }) expect(result.error).toBeUndefined() expect(result.value).toBe(41) expect(globalReads).toBe(1) }, 15_000) it('rejects an errorClass name colliding with its namespace global at the seam', async () => { const { runtime } = await setup() await expect(runtime.run({ program: 'return 1', bindings: [{ global: 'tools', functions: {}, errorClass: { name: 'tools', memberNameProperty: 'toolName' } }], })).rejects.toThrow(/collides with another injected global/) }) it('rejects a namespace global colliding with a runtime-owned name at the seam', async () => { // `__dsh_main__` passes the identifier check, but exec()ing the generated // wrapper would silently overwrite the binding after injection. `console` // is the WORKER backend's slot — refused here too so a namespace list // valid on one backend is valid on all. const { runtime } = await setup() // `__debug__` is refused for a different reason than a collision: CPython // compiles a bare `__debug__` reference to the constant True and refuses to // assign the name at compile time, so an injected global under it is // unreachable from the program — accepted by the seam, unusable here. for (const global of ['__dsh_main__', 'console', '__debug__']) { await expect(runtime.run({ program: 'x = 1', bindings: [{ global, functions: {} }], })).rejects.toThrow(/collides with a runtime-owned global/) } }) it('accepts a non-identifier memberNameProperty and rejects only an empty one', async () => { // The seam permits any non-empty own property except the reserved // members; Python setattr/getattr carry exotic names like `tool-name`, // and the worker backend accepts them, so this backend must too. const { runtime } = await setup() const result = await runtime.run({ program: [ 'try:', ' await tools.boom({})', 'except ToolCallError as e:', ' return getattr(e, "tool-name")', ].join('\n'), bindings: [{ global: 'tools', functions: { boom: async () => { throw new Error('nope') } }, errorClass: { name: 'ToolCallError', memberNameProperty: 'tool-name' }, }], }) expect(result.error).toBeUndefined() expect(result.value).toBe('boom') await expect(runtime.run({ program: 'return 1', bindings: [{ global: 'tools', functions: {}, errorClass: { name: 'ToolCallError', memberNameProperty: '' } }], })).rejects.toThrow(/memberNameProperty must be a non-empty attribute name/) }) it('resolves a basename pythonBin to an absolute path (runs a real program)', async () => { // A bare `python3` basename must resolve against PATH and actually launch // under the empty-env spawn — exercises the accessSync success branch. const { runtime } = await setup({ pythonBin: 'python3' }) const result = await runtime.run({ program: 'return 7', bindings: [] }) expect(result.error).toBeUndefined() expect(result.value).toBe(7) }) it('rejects at load a basename pythonBin with no PATH match', async () => { // resolvePythonBin turns a basename into an absolute path before the // empty-env spawn; a basename with no PATH match must fail at load (like an // empty or NUL pythonBin) rather than silently falling to execvp's // platform default PATH and starting a system interpreter the caller never // asked for. const ctx = new Context() await expect(ctx.plugin(PythonCodeRuntime, { pythonBin: 'definitely-no-such-python-xyz' })) .rejects.toThrow(/does not resolve on PATH/) }) it('rejects a memberNameProperty naming a constrained BaseException attribute', async () => { // `__dict__`/`__class__` are constrained descriptors alongside // `__traceback__` — setattr of a string raises TypeError while // constructing the rejection — so every dunder is refused at the seam. const { runtime } = await setup() // name/message/stack are the seam's own exclusions (CodeBindingErrorClass // forbids replacing them; the worker backend rejects them identically). for (const member of ['__traceback__', '__dict__', '__class__', 'args', 'name', 'message', 'stack']) { await expect(runtime.run({ program: 'return 1', bindings: [{ global: 'tools', functions: {}, errorClass: { name: 'ToolCallError', memberNameProperty: member } }], })).rejects.toThrow(/reserved error member/) } }) it('rejects a lossy binding resolution (NaN) instead of coercing it to null', async () => { // JSON.stringify would turn NaN into null and drop undefined fields; the // seam requires a descriptive rejection so data cannot silently corrupt. const { runtime } = await setup() const result = await runtime.run({ program: [ 'caught = ""', 'try:', ' await tools.bad({})', 'except RuntimeError as e:', ' caught = str(e)', 'return caught', ].join('\n'), bindings: tools({ bad: async () => Number.NaN }), }) expect(result.error).toBeUndefined() expect(result.value).toContain('lossless JSON') }) it('contains a forged pathological done value without crashing the host', async () => { // A ~20k-deep nested array forged onto fd 3 would overflow a recursive // JSON.stringify; the host's iterative encoder measures it stack-safely // and fails it deterministically on the byte budget (40 kB > 32 KiB). const { runtime } = await setup() const result = await runtime.run({ program: [ 'import os, json', 'depth = 20000', 'payload = "[" * depth + "]" * depth', 'os.write(3, b\'{"type":"done","value":\' + payload.encode() + b\'}\\n\')', 'import time', 'time.sleep(5)', ].join('\n'), bindings: [], }) expect(result.value).toBeUndefined() expect(result.error?.kind).toBe('output-limit') }) it('preserves a deeply nested completion value below the byte budget', async () => { // CodeJsonValue has no depth limit: a 10000-deep nested list is only // ~20 kB — under maxValueBytes — and must cross intact. That depth // overflows BOTH recursive serializers the pipeline used to rely on // (CPython's json.dumps recursion limit ~1000s, V8's JSON.stringify), so // it proves the child-side _encode_json_plain and the host-side // encodeJsonPlain together. The host JSON.parse of the frame is iterative // in V8 for arrays, so only the two encoders were at risk. const { runtime } = await setup() const result = await runtime.run({ program: [ 'v = None', 'for _ in range(10000):', ' v = [v]', 'return v', ].join('\n'), bindings: [], }) expect(result.error).toBeUndefined() // Walk down iteratively (a recursive toEqual would itself overflow). let depth = 0 let cursor: unknown = result.value while (Array.isArray(cursor)) { expect(cursor).toHaveLength(1) cursor = cursor[0] depth++ } expect(depth).toBe(10000) expect(cursor).toBeNull() }) it('bridges a deeply nested binding resolution back into the program stack-safely', async () => { // A binding resolution has no seam-level depth or byte cap; neither the // host's reply serialization nor the CHILD's reply decode may die on // recursion (json.loads raises RecursionError ~10k levels deep; the // bootstrap decodes frames iteratively). 12000 levels sits past that // limit while staying tiny in bytes. const { runtime } = await setup() const deep = ((): unknown => { let v: unknown = null for (let i = 0; i < 12000; i++) v = [v] return v })() const result = await runtime.run({ program: [ 'v = await tools.deep({})', 'depth = 0', 'while isinstance(v, list):', ' v = v[0]', ' depth += 1', 'return depth', ].join('\n'), bindings: tools({ deep: async () => deep as never }), }) expect(result.error).toBeUndefined() expect(result.value).toBe(12000) }) it('rejects a reserved errorClass name at the seam', async () => { const { runtime } = await setup() await expect(runtime.run({ program: 'return 1', bindings: [{ global: 'tools', functions: {}, errorClass: { name: 'class', memberNameProperty: 'toolName' }, }], })).rejects.toThrow(/errorClass.name "class" is not a usable Python identifier/) }) it('routes a declared inherited-attribute name through the bridge via subscript', async () => { // __class__ resolves on `object` before any fallback hook; the proxy's // __getattribute__ intercepts declared names first, and subscript access // is the SDK-advertised route for underscore names. const { runtime } = await setup() const seen: string[] = [] const result = await runtime.run({ program: [ 'a = await tools["__class__"]({"via": "subscript"})', 'b = await tools.__class__({"via": "dot"})', 'return [a, b]', ].join('\n'), bindings: tools({ '__class__': async () => { seen.push('called'); return 'bridged' }, }), }) expect(result.error).toBeUndefined() expect(result.value).toEqual(['bridged', 'bridged']) expect(seen).toEqual(['called', 'called']) }) it('rejects NaN binding arguments immediately instead of hanging', async () => { // Default json.dumps would emit a non-standard NaN token that the host // JSON.parse drops silently, hanging the call until the wall clock; // allow_nan=False raises in-program right away. const { runtime } = await setup({ maxWallMs: 8000 }) const start = Date.now() const result = await runtime.run({ program: [ 'caught = ""', 'try:', ' await tools.echo({"x": float("nan")})', 'except RuntimeError as e:', ' caught = str(e)', 'return caught', ].join('\n'), bindings: tools({ echo: async args => args as CodeJsonValue }), }) expect(result.error).toBeUndefined() expect(result.value).toContain('lossless JSON') expect(Date.now() - start).toBeLessThan(5000) }) it('carries large binding arguments well past maxValueBytes', async () => { // Binding traffic has no seam byte cap: a call frame far larger than the // completion budget must reach the host intact (the fd-3 ceiling is a // fixed memory-safety bound, not an output budget). const maxValueBytes = 4096 const { runtime } = await setup({ maxValueBytes }) let receivedLength = 0 const result = await runtime.run({ program: [ `big = "B" * ${maxValueBytes * 50}`, 'r = await tools.measure({"payload": big})', 'return r', ].join('\n'), bindings: tools({ measure: async (args) => { receivedLength = ((args as { payload: string }).payload).length return receivedLength }, }), }) expect(result.error).toBeUndefined() expect(receivedLength).toBe(maxValueBytes * 50) expect(result.value).toBe(maxValueBytes * 50) }) it('rejects an unknown binding name inside the program with a matching error', async () => { const { runtime } = await setup() const result = await runtime.run({ program: [ 'caught = ""', 'try:', ' await tools.nope({})', 'except (AttributeError, RuntimeError) as e:', ' caught = str(e)', 'return caught', ].join('\n'), bindings: tools({ known: async () => 'ok' }), }) expect(result.error).toBeUndefined() expect(result.value).toContain('nope') }) it('bounds an unknown-binding diagnostic built from a forged call frame', async () => { // `call.global` and `call.name` carry no byte cap of their own, only the // 64 MiB fd-3 frame parse cap, and the reply interpolated them raw: one copy // into the template result, one into the `JSON.stringify` escape, one into // the `encodeJsonPlain` frame, one into the pipe write. Slicing each field // to `maxValueBytes` code units first makes an 8 MiB forged name a // 128-byte reply. The observable effect is the reply the child then has to // READ: its fd-3 reader is unbuffered, so `readline` consumes an oversized // reply one `read(2)` per byte and the run's own legitimate call never gets // answered — measured under a 60 s ceiling, the 8 MiB case timed out and a // 64 MiB case cost the host 509.9 MiB of heap against 120.3 MiB with the // slices in place. The child's address space stays generous enough to BUILD // the forgery, which is not what is under test. const { runtime } = await setup({ maxValueBytes: 128, addressSpaceMb: 1024, maxWallMs: 20_000 }) const result = await runtime.run({ program: [ 'import os', 'frame = b\'{"type":"call","id":9001,"global":"tools","name":"\' + b"n" * (8 * 1024 * 1024) + b\'","args":{}}\\n\'', // One os.write returns short past the pipe buffer, and a partial frame // would glue itself to the next one and be dropped as malformed, so the // forgery goes out through a drain loop. 'view = memoryview(frame)', 'while view:', ' view = view[os.write(3, view):]', // A legitimate call after the forgery: its reply can only arrive once // the child has read past whatever the forged frame was answered with. 'await tools.known({})', 'return "settled"', ].join('\n'), bindings: tools({ known: async () => 'ok' }), }) expect(result.error).toBeUndefined() expect(result.value).toBe('settled') }, 40_000) it('bridges a binding call reached via subscript access (tools["name"])', async () => { // The SDK tells the model `await tools["my-tool"](args)` works for exotic // names; the proxy's __getitem__ must route it through the bridge. const { runtime } = await setup() const result = await runtime.run({ program: [ 'r = await tools["my-tool"]({"n": 7})', 'return r', ].join('\n'), bindings: tools({ 'my-tool': async args => ({ got: args as CodeJsonValue }) }), }) expect(result.error).toBeUndefined() expect(result.value).toEqual({ got: { n: 7 } }) }) it('raises KeyError for an undeclared subscript name', async () => { const { runtime } = await setup() const result = await runtime.run({ program: [ 'caught = ""', 'try:', ' await tools["absent"]({})', 'except KeyError as e:', ' caught = str(e)', 'return caught', ].join('\n'), bindings: tools({ known: async () => 'ok' }), }) expect(result.error).toBeUndefined() expect(result.value).toContain('absent') }) }) describe('PythonCodeRuntime — budgets, termination, disposal', () => { it('kills a wall-clock runaway program via SIGTERM/SIGKILL and reports timeout', async () => { const { runtime } = await setup({ maxWallMs: 500, graceMs: 200 }) const start = Date.now() const result = await runtime.run({ program: 'import time\nwhile True: time.sleep(1)', bindings: [], }) const elapsed = Date.now() - start // The wall timer may fire first or the exit-after-signal may resolve; both are ok. expect(['timeout', 'worker-exit']).toContain(result.error?.kind) // We got somewhere in the neighborhood of maxWallMs, not the underlying `sleep(1)`. expect(elapsed).toBeLessThan(2000) }, 5000) it('aborts a run when the outer signal fires mid-flight', async () => { const { runtime } = await setup({ maxWallMs: 10_000 }) const controller = new AbortController() const settled: Promise = runtime.run({ program: 'import time\nwhile True: time.sleep(0.1)', bindings: [], signal: controller.signal, }) setTimeout(() => { controller.abort('outer-abort') }, 200) const result = await settled expect(['abort', 'worker-exit']).toContain(result.error?.kind) }, 5000) it('settles the run when a mid-flight abort reason cannot be converted', async () => { // The listener converted the reason before calling `finish()`, so a hostile // reason threw from inside an `AbortSignal` listener. Node reports that as an // uncaught exception — it can terminate the host — and `finish()` never ran, // so the run stayed live until the wall ceiling and misreported as `timeout` // (observed) instead of the caller's cancellation. `maxWallMs` is short so // that misreport is a fast assertion failure rather than a suite timeout. const uncaught: unknown[] = [] const record = (error: unknown): void => { uncaught.push(error) } process.on('uncaughtException', record) try { const { runtime } = await setup({ maxWallMs: 4_000, graceMs: 200 }) const controller = new AbortController() const settled: Promise = runtime.run({ program: 'import time\nwhile True: time.sleep(0.1)', bindings: [], signal: controller.signal, }) setTimeout(() => { controller.abort({ [Symbol.toPrimitive]() { throw new Error('reason blew up') } }) }, 200) const result = await settled expect(result.error?.kind).toBe('abort') expect(result.error?.message).toBe('') expect(uncaught).toEqual([]) } finally { process.off('uncaughtException', record) } }, 15_000) it('disposes to quiescence: an in-flight run resolves as abort and the child exits', async () => { const { fiber, runtime } = await setup({ maxWallMs: 10_000 }) const pending = runtime.run({ program: 'import time\nwhile True: time.sleep(0.1)', bindings: [], }) // Give the process time to spawn and start running. await new Promise(resolve => setTimeout(resolve, 200)) await fiber.dispose() const result = await pending expect(['abort', 'worker-exit']).toContain(result.error?.kind) }, 5000) it('reports an interpreter removed after load as worker-exit', async () => { const dir = await mkdtemp(join(tmpdir(), 'dsh-python-removed-')) const pythonBin = join(dir, 'python3') await writeFile(pythonBin, `#!/bin/sh\nexec "${PYABS}" "$@"\n`, { mode: 0o755 }) const { runtime, fiber } = await setup({ pythonBin, maxWallMs: 3000 }) rmSync(pythonBin) try { const result = await runtime.run({ program: 'return 1', bindings: [] }) expect(result.error?.kind).toBe('worker-exit') } finally { await fiber.dispose() rmSync(dir, { recursive: true, force: true }) } }, 8000) it('applies the strictest of the configured and inherited resource limits', async () => { // This case used to drive the bootstrap's `applying resource limits failed` // handler with `cpuSeconds: 2 ** 63`, asserting that a cap the child cannot // apply fails the run rather than running it uncapped. That premise no longer // holds, for two independent reasons, so the test now pins what is actually // guaranteed instead of a path no admissible input reaches. // // First, `2 ** 63` is not a safe integer, so it is now rejected at LOAD as a // configuration error — it can never reach the child at all. Second, even the // largest admissible values are applied successfully, because `_clamped` // bounds every requested pair by the inherited hard limit: an unprivileged // process may lower a hard limit but never raise one, so the child keeps the // stricter of the two rather than asking for something `setrlimit` refuses. // The failure handler remains as a substrate guard (a platform whose kernel // refuses the call for its own reasons), but it is no longer reachable from // configuration, and a test that pretends otherwise documents a contract the // code does not have. // // What is observable: a very large cap still yields a working run, and the // containment it promises is met by the inherited ceiling. const { runtime } = await setup({ cpuSeconds: Number.MAX_SAFE_INTEGER - 1, maxWallMs: 10_000 }) const result = await runtime.run({ program: 'return 1', bindings: [] }) expect(result.error).toBeUndefined() expect(result.value).toBe(1) }, 20_000) it('settles as worker-exit when the child exits before sending done (no hang)', async () => { // Regression: settlement must key off `close` (process reaped AND stdio // drained), not `exit`. With `exit`, finish() re-armed a second exit // listener that never fired — run() hung forever whenever the exit event // beat the final fd-3 data (deterministic on macOS, a lost race elsewhere). const { runtime } = await setup({ maxWallMs: 10_000 }) const result = await runtime.run({ program: 'import os\nos._exit(7)', bindings: [], }) expect(result.error?.kind).toBe('worker-exit') expect(result.error?.message).toContain('code=7') }, 5000) it('classifies RLIMIT_CPU soft-limit expiry (SIGXCPU) as a timeout', async () => { // A CPU hot loop burns the soft limit; the kernel delivers SIGXCPU, whose // close signal the host maps to `timeout`. macOS re-delivers SIGXCPU // differently, so we assert only kind/message here — CI's darwin leg // validates real delivery. cpuSeconds must be an integer for setrlimit. const { runtime } = await setup({ cpuSeconds: 1, maxWallMs: 20_000 }) const result = await runtime.run({ program: 'while True: pass', bindings: [], }) expect(result.error?.kind).toBe('timeout') expect(result.error?.message).toContain('CPU time exhausted') }, 8000) it('keeps an early self-inflicted SIGKILL a worker-exit, not a CPU timeout', async () => { // The unsolicited-SIGKILL-as-timeout classification applies only when the // CPU budget could have expired (wall time >= cpuSeconds). A SIGKILL // seconds before that (cgroup OOM, an operator, os.kill) is substrate // death and stays worker-exit per the orthogonal taxonomy. const { runtime } = await setup({ cpuSeconds: 60, maxWallMs: 10_000 }) const result = await runtime.run({ program: [ 'import os, signal', 'os.kill(os.getpid(), signal.SIGKILL)', ].join('\n'), bindings: [], }) expect(result.error?.kind).toBe('worker-exit') expect(result.error?.message).toContain('SIGKILL') }) it('charges a forked descendant against the run CPU budget', async () => { // RLIMIT_CPU is per-process and every child inherits a FRESH budget, so a // program that shells out multiplies `cpuSeconds` by the number of // descendants it starts. Measured before the aggregate meter existed: with // cpuSeconds 1, two sequential busy children burned 2.0 CPU-seconds // (RUSAGE_CHILDREN) and the run still returned a SUCCESS completion. The // settle-time check meters RUSAGE_SELF + RUSAGE_CHILDREN and converts the // overrun into the same SIGXCPU the untrapped soft limit sends. const { runtime } = await setup({ cpuSeconds: 1, maxWallMs: 30_000 }) const result = await runtime.run({ program: [ 'import subprocess, sys', 'for _ in range(2):', ' subprocess.run([sys.executable, "-c", "import time\\nt=time.time()\\nwhile time.time()-t<1.2: pass"])', 'return "escaped the cpu budget"', ].join('\n'), bindings: [], }) // Darwin's SIGXCPU re-delivery differs, so accept either terminal // classification; what must NOT happen is the completion crossing. expect(['timeout', 'worker-exit']).toContain(result.error?.kind) expect(result.value).toBeUndefined() }, 40_000) it('does not charge wall time or a cheap descendant against the CPU budget', async () => { // The meter is CPU, not wall clock, and it must not fire on a child that // burns almost nothing: a sleeping program and a trivial subprocess both // have to complete normally, or the check would reject every program that // shells out. const { runtime } = await setup({ cpuSeconds: 1, maxWallMs: 30_000 }) const slept = await runtime.run({ program: 'import time\ntime.sleep(1.5)\nreturn "slept"', bindings: [], }) expect(slept.error).toBeUndefined() expect(slept.value).toBe('slept') const cheap = await runtime.run({ program: [ 'import subprocess, sys', 'subprocess.run([sys.executable, "-c", "pass"])', 'return "cheap child"', ].join('\n'), bindings: [], }) expect(cheap.error).toBeUndefined() expect(cheap.value).toBe('cheap child') }, 40_000) it('spends no part of addressSpaceMb on bootstrap machinery', async () => { // RLIMIT_AS counts RESERVED address space, so anything the bootstrap maps // for its own accounting is subtracted from the program's `addressSpaceMb`. // A sampling thread for the descendant-CPU meter cost 72 MiB here (an 8 MiB // stack plus a 64 MiB glibc per-thread malloc arena reservation) and turned // the 2-million-entry dict rejection below into a MemoryError under a // 256 MiB cap on a slower runner. Assert the child's own mappings directly // rather than inferring the budget from a near-cap allocation, so the bound // is read from /proc instead of from how much headroom one machine happens // to have; 48 MiB is well above the ~30 MiB a bare interpreter maps and // well below the 102 MiB the thread produced. `addressSpaceMb` itself is // skipped on darwin (the dyld shared cache makes any practical cap // unsettable) and /proc/self/maps does not exist there, so the mapping // assertion is Linux-only; the completion path is checked everywhere. const { runtime } = await setup({ maxValueBytes: 4096, addressSpaceMb: 256 }) const mapped = await runtime.run({ program: [ 'import sys', 'if sys.platform != "linux":', ' return 0', 'total = 0', 'with open("/proc/self/maps") as handle:', ' for line in handle:', ' low, high = (int(part, 16) for part in line.split(" ", 1)[0].split("-"))', ' total += high - low', 'return total // (1024 * 1024)', ].join('\n'), bindings: [], }) expect(mapped.error).toBeUndefined() expect(mapped.value).toBeLessThan(48) }, 20_000) it('spends no part of addressSpaceMb on the reply pump, across a binding await', async () => { // The test above measures BEFORE the program yields, so it could not see the // reply pump's cost: `loop.run_in_executor(None, read_frame)` created the // default executor's first thread on the first `await tools.*`, and that // thread's 8 MiB stack plus a 64 MiB glibc per-thread malloc arena are // charged to RLIMIT_AS while the limit is already in force — measured, the // child went from 30.34 MiB to 102.39 MiB across one binding call. Under a // small `addressSpaceMb` the thread cannot start and a legitimate call hangs // to `maxWallMs`; under a larger one an allocation that should have fit dies // as MemoryError. `loop.add_reader` watches the fd with no thread at all. // // Measuring both sides inside one run is what discriminates: a single // after-the-fact number cannot separate the pump's cost from the // interpreter's own footprint. Linux-only for the same reason as above. const { runtime } = await setup({ addressSpaceMb: 256, maxWallMs: 20_000 }) const result = await runtime.run({ program: [ 'import sys', 'def mapped():', ' if sys.platform != "linux":', ' return 0', ' total = 0', ' with open("/proc/self/maps") as handle:', ' for line in handle:', ' low, high = (int(part, 16) for part in line.split(" ", 1)[0].split("-"))', ' total += high - low', ' return total // (1024 * 1024)', 'before = mapped()', 'echoed = await tools.echo({"ping": True})', 'return {"before": before, "after": mapped(), "echoed": echoed}', ].join('\n'), bindings: tools({ echo: async args => args as CodeJsonValue }), }) expect(result.error).toBeUndefined() const value = result.value as { before: number; after: number; echoed: unknown } // The binding call really happened, so the pump really ran. expect(value.echoed).toEqual({ ping: true }) // Awaiting a binding maps nothing extra. The 8 MiB allowance absorbs ordinary // heap growth while staying far below the 72 MiB a pump thread cost. expect(value.after - value.before).toBeLessThan(8) }, 30_000) it('still terminates a program that ignores SIGXCPU (hard-limit backstop)', async () => { // A hot loop under SIG_IGN burns through the soft limit; the kernel's // hard limit (cpuSeconds + 1) SIGKILLs it. Only a kernel-authoritative // SIGXCPU close classifies as the CPU timeout — a bare SIGKILL is // indistinguishable from a cgroup OOM kill, so it reports worker-exit // (Darwin re-delivers SIGXCPU instead, where the wall clock settles it // as timeout). Either way the run TERMINATES within the budget — the // backstop holds even when the classification is the opaque one. const { runtime } = await setup({ cpuSeconds: 1, maxWallMs: 6_000 }) const result = await runtime.run({ program: [ 'import signal', 'signal.signal(signal.SIGXCPU, signal.SIG_IGN)', 'while True: pass', ].join('\n'), bindings: [], }) expect(['timeout', 'worker-exit']).toContain(result.error?.kind) }, 12_000) it('enforces the CPU budget even when the program monkeypatches the enforcement primitives', async () => { // The check uses import-time-captured references, so replacing // resource.getrusage / signal.signal / os.kill on the modules cannot // defang it: a trapping program that also swaps the callables and burns // past the budget still dies by the authoritative SIGXCPU. const { runtime } = await setup({ cpuSeconds: 1, maxWallMs: 15_000 }) const result = await runtime.run({ program: [ 'import signal, os, resource, time', 'signal.signal(signal.SIGXCPU, lambda *a: None)', 'resource.getrusage = lambda *a: (_ for _ in ()).throw(RuntimeError("nope"))', 'os.kill = lambda *a: None', 'signal.signal = lambda *a: None', 'deadline = time.process_time() + 1.05', 'while time.process_time() < deadline: pass', 'return "escaped"', ].join('\n'), bindings: [], }) expect(result.error?.kind).toBe('timeout') expect(result.value).toBeUndefined() }, 15_000) it('re-delivers SIGXCPU when a trapping program returns inside the soft-to-hard gap', async () => { // A program can trap SIGXCPU and settle during the one-second gap; the // bootstrap re-checks the kernel CPU meter (getrusage) after settlement // and dies by SIGXCPU with the default disposition restored, so the host // still classifies the exhausted budget as a timeout instead of success. const { runtime } = await setup({ cpuSeconds: 1, maxWallMs: 15_000 }) const result = await runtime.run({ program: [ 'import signal, time', 'fired = []', 'signal.signal(signal.SIGXCPU, lambda *a: fired.append(1))', 'deadline = time.process_time() + 1.05', 'while time.process_time() < deadline: pass', 'return "escaped"', ].join('\n'), bindings: [], }) expect(result.error?.kind).toBe('timeout') expect(result.error?.message).toContain('CPU time exhausted') expect(result.value).toBeUndefined() }, 15_000) it('enforces the CPU budget when the program rebinds the enforcer on __main__', async () => { // The bootstrap IS `__main__`, so `import __main__` reaches its globals. // The enforcement callable holds its primitives in closure cells (not // module attributes) and `_run` reads the callable into a frame local // before the program starts, so neither replacing the global nor swapping // the module's captured names changes what runs after settlement. const { runtime } = await setup({ cpuSeconds: 1, maxWallMs: 15_000 }) const result = await runtime.run({ program: [ 'import signal, time, __main__', 'signal.signal(signal.SIGXCPU, lambda *a: None)', '__main__._DIE_IF_CPU_EXHAUSTED = lambda *_: None', 'deadline = time.process_time() + 1.05', 'while time.process_time() < deadline: pass', 'return "escaped"', ].join('\n'), bindings: [], }) expect(result.error?.kind).toBe('timeout') expect(result.value).toBeUndefined() }, 15_000) it('bounds a program that defeats the post-check by writing its closure cell', async () => { // The closure-cell capture raises the cost of defeating the post-check; it // does NOT make it unreachable, and nothing in-process could: a cell is // writable through `fn.__closure__[i].cell_contents`, and `sys._getframe` // reads _run's frame locals. This program does exactly that — walks to // _run's frame, takes the enforcement callable, and replaces its captured // `getrusage` with one reporting zero CPU used — then burns past cpuSeconds // with SIGXCPU trapped. The run must still fail, because the bound that // model code cannot forge is outside the interpreter: the RLIMIT_CPU HARD // limit at cpuSeconds + 1, whose SIGKILL admits no handler. No success is // reportable either way. const { runtime } = await setup({ cpuSeconds: 1, maxWallMs: 20_000 }) const start = Date.now() const result = await runtime.run({ program: [ 'import signal, sys, time', 'signal.signal(signal.SIGXCPU, lambda *a: None)', // Walk out of __dsh_main__ to _run's frame and take its local. 'die = None', 'depth = 1', 'while depth < 12:', ' frame = sys._getframe(depth)', ' if "die_if_cpu_exhausted" in frame.f_locals:', ' die = frame.f_locals["die_if_cpu_exhausted"]', ' break', ' depth += 1', 'assert die is not None, "enforcer not reachable from the frame chain"', 'class Zero:', ' ru_utime = 0.0', ' ru_stime = 0.0', 'names = die.__code__.co_freevars', 'die.__closure__[names.index("getrusage")].cell_contents = lambda *a: Zero()', // Burn well past the soft limit into the hard limit's SIGKILL. 'while True: pass', ].join('\n'), bindings: [], }) // What holds on EVERY platform: the tampering bought no success. The run // failed, carried no value, and the reported kind is one of the two // kernel-level outcomes — never a completion. expect(result.value).toBeUndefined() expect(result.error?.kind === 'worker-exit' || result.error?.kind === 'timeout').toBe(true) if (process.platform === 'linux') { // Linux enforces the RLIMIT_CPU HARD limit at cpuSeconds + 1 promptly, so // the CPU bound — not the 20 s wall ceiling — is what stops the program. // Its SIGKILL is not SIGXCPU, so the orthogonal-failure taxonomy reports // `worker-exit`: a bare SIGKILL is not evidence of CPU burn. expect(result.error?.kind).toBe('worker-exit') expect(Date.now() - start).toBeLessThan(15_000) } else { // Darwin does not deliver the hard limit's SIGKILL on the same schedule; // observed on the macOS lane, a program that patches the post-check runs // to the WALL ceiling instead. The CPU budget is therefore not the // binding constraint against a tampering program there — the wall clock // is. Asserted rather than skipped so the difference stays visible. expect(result.error?.kind).toBe('timeout') } }, 30_000) it('keeps a finished-but-not-closed run live so dispose awaits the child\'s death', async () => { // finish() no longer drops the run from `live`; settle() (at close) does. // A SIGTERM-trapping program with a small graceMs sits in the grace window // after finish() fires — dispose() must not resolve until the SIGKILL // backstop actually reaps the child. The program prints its pid (captured // as a log even on abort); once dispose() resolves, that pid must be dead // (process.kill(pid, 0) throws ESRCH). const { fiber, runtime } = await setup({ maxWallMs: 10_000, graceMs: 400 }) // Deterministic readiness: the program reports its pid through a binding // AFTER installing the trap, so dispose cannot race the spawn (a fixed // sleep lost that race on slow CI runners — SIGTERM landed pre-trap). let reportedPid!: (pid: number) => void const trapReady = new Promise((resolve) => { reportedPid = resolve }) const pending = runtime.run({ program: [ 'import signal, time, os', 'signal.signal(signal.SIGTERM, lambda *a: None)', 'await tools.ready({"pid": os.getpid()})', 'while True: time.sleep(0.05)', ].join('\n'), bindings: tools({ ready: async (args) => { reportedPid((args as { pid: number }).pid) return 'ok' }, }), }) const pid = await trapReady const start = Date.now() await fiber.dispose() const elapsed = Date.now() - start const result = await pending expect(['abort', 'worker-exit', 'timeout']).toContain(result.error?.kind) // dispose() returned only after the grace window elapsed (the SIGTERM trap // forces the SIGKILL backstop path), proving the run stayed live past finish(). expect(elapsed).toBeGreaterThanOrEqual(300) expect(Number.isInteger(pid) && pid > 0).toBe(true) // The child is fully reaped by the time dispose() resolved. expect(() => process.kill(pid, 0)).toThrow(/ESRCH/) }, 8000) it('settles on the decided result even when a setsid-escaped orphan holds stdio open past close', async () => { // `close` only fires once every inherited stdio stream drains. A descendant // started with start_new_session=True escapes the child's process group, so // the SIGTERM/SIGKILL aimed at that group never reaches it; if it inherited // our stdout/stderr/fd 3 and outlives the run, `close` would never fire and // run() would hang forever. The close-deadline backstop (graceMs + margin) // must force settlement on the value the `done` frame already decided. const { runtime } = await setup({ graceMs: 100 }) const start = Date.now() const result = await runtime.run({ program: [ 'import subprocess, sys', // Orphan in a fresh session, inheriting our stdout/stderr/fd 3, alive // past the close-deadline so `close` cannot fire on its own. Its own // 5 s self-exit is the leak ceiling AND the discriminator: it must stay // ABOVE the < 4000 ms upper-bound assertion below, so if the deadline // backstop failed to settle, settlement could only come from this // self-exit at ~5 s and blow the bound — a sharper signal than the wall // ceiling would give. 'subprocess.Popen([sys.executable, "-c", "import time; time.sleep(5)"],', ' start_new_session=True)', 'return "escaped"', ].join('\n'), bindings: [], }) const elapsed = Date.now() - start // The done frame decided the value; the deadline settled it despite the // orphan pinning the pipes open. expect(result.error).toBeUndefined() expect(result.value).toBe('escaped') // Settlement waited for the backstop (graceMs + CLOSE_REAP_MARGIN_MS ≈ 2.1s), // not the orphan's 5 s self-exit — proving the deadline, not a fallback, fired. expect(elapsed).toBeGreaterThanOrEqual(1_500) expect(elapsed).toBeLessThan(4_000) }, 8000) it('flushes a newline-free diagnostic when the closeDeadline forces settlement', async () => { // A leader that writes an unterminated diagnostic via `os.write(1, ...)` and // then exits, leaving a setsid orphan holding the pipes open, settles through // the closeDeadline destroy() path — which fires no `end`. The residual must // be flushed before destroy() drops it, or the diagnostic is lost from // `logs`. The value is decided by the done frame; the diagnostic must survive. const { runtime } = await setup({ graceMs: 100 }) const result = await runtime.run({ program: [ 'import os, subprocess, sys', 'os.write(1, b"leader-diagnostic-no-newline")', 'subprocess.Popen([sys.executable, "-c", "import time; time.sleep(5)"],', ' start_new_session=True)', 'return "escaped"', ].join('\n'), bindings: [], }) expect(result.error).toBeUndefined() expect(result.value).toBe('escaped') expect(result.logs).toContain('leader-diagnostic-no-newline') }, 8000) it('closes the child stdin so a program read sees EOF instead of blocking', async () => { // The host closes the child's stdin write handle immediately after spawn // (the program is an async body that reads nothing from fd 0; a live pipe // would hold a host-side handle open past the run). A program that DOES // read fd 0 therefore sees EOF at once. Fail-before: with the handle left // open and no data written, `sys.stdin.read()` blocks and the run would // hang to maxWallMs as a timeout. const { runtime } = await setup({ maxWallMs: 8_000 }) const result = await runtime.run({ program: [ 'import sys', 'data = sys.stdin.read()', 'return "read: " + repr(data)', ].join('\n'), bindings: [], }) expect(result.error).toBeUndefined() expect(result.value).toBe("read: ''") }, 15_000) it('keeps runtime type annotations as live classes, not PEP 563 strings, when the program reads them', async () => { // bootstrap.py imports `from __future__ import annotations`; without // dont_inherit=True on compile(), that PEP 563 flag leaks into the program's // compiled code and stringifies its type annotations, changing the semantics // of a legal program that reads `f.__annotations__` at runtime. const { runtime } = await setup() const result = await runtime.run({ program: [ 'def f(x: int) -> int:', ' return x', 'return f.__annotations__["x"].__name__', ].join('\n'), bindings: [], }) expect(result.error).toBeUndefined() expect(result.value).toBe('int') }, 15_000) it('reaps a same-group child that ignores SIGTERM and releases the pipes before close', async () => { // The same-group counterpart to the setsid-orphan case above. A descendant // left in the child's OWN process group (no setsid, so `kill(-pid)` reaches // it) can ignore SIGTERM yet still release the inherited stdout/stderr/fd 3 // it does not hold — here by giving the Popen child DEVNULL streams and // letting close_fds drop fd 3. The leader then writes `done` and exits, its // `close` fires because the pipes drained, and settle() runs while that // descendant is still alive. settle() then keeps a REF'd poll alive until the // grace-window SIGKILL has emptied the whole process group, so the host cannot // exit and reparent the survivor to init: no subprocess outlives the fiber. // // The descendant must have SIG_IGN installed BEFORE the host sends SIGTERM, // or it dies from the default SIGTERM whether the fix is present or not — so // it writes a readiness marker after trapping and the leader waits for that // marker before returning. While alive it bumps a heartbeat file every 50 ms; // the test asserts the heartbeat STOPS, which is what "no longer executing" // means whether the killed descendant is reaped or lingers as a zombie (a // SIGKILL'd process runs no more code either way). It sleeps 30 s as a safety // net so a broken fix cannot leak it forever. const handoff = await makeTempDir('dsh-samegroup-') const readyMarker = join(handoff, 'ready') const heartbeat = join(handoff, 'heartbeat') const { runtime } = await setup({ maxWallMs: 10_000, graceMs: 300 }) const result = await runtime.run({ program: [ 'import subprocess, sys, os, time', `marker = ${JSON.stringify(readyMarker)}`, `heartbeat = ${JSON.stringify(heartbeat)}`, // Same group (no start_new_session); ignores SIGTERM; holds none of the // leader's pipes (DEVNULL std streams, close_fds drops fd 3). It writes // the marker (argv[1]) only AFTER the trap is installed — so the leader // cannot return, and the host cannot send SIGTERM, before it is ignored — // then rewrites the heartbeat (argv[2]) every 50 ms for up to 30 s. 'code = ("import signal, sys, time\\n"', ' "signal.signal(signal.SIGTERM, signal.SIG_IGN)\\n"', ' "open(sys.argv[1], \'w\').close()\\n"', ' "end = time.time() + 30\\n"', ' "while time.time() < end:\\n"', ' " open(sys.argv[2], \'w\').close()\\n"', ' " time.sleep(0.05)\\n")', 'child = subprocess.Popen([sys.executable, "-c", code, marker, heartbeat],', ' stdin=subprocess.DEVNULL,', ' stdout=subprocess.DEVNULL,', ' stderr=subprocess.DEVNULL)', 'deadline = time.time() + 5', 'while not os.path.exists(marker) and time.time() < deadline:', ' time.sleep(0.02)', 'return "spawned"', ].join('\n'), bindings: [], }) expect(result.error).toBeUndefined() expect(result.value).toBe('spawned') // The trap really installed before the leader returned, so this is the // SIGTERM-ignoring descendant, not one that would have died to the default. expect(existsSync(readyMarker)).toBe(true) // The grace-window SIGKILL (graceMs 300 + reap margin) empties the group. Once // it has, the descendant stops bumping the heartbeat. Poll the heartbeat's // mtime: two consecutive reads far enough apart with no change means it is no // longer executing — true whether it was reaped or lingers as a zombie, so // the assertion holds in a container whose init does not wait() orphans. The // window (well under the 30 s self-timeout) proves the SIGKILL did the work. const mtime = (): number => { try { return statSync(heartbeat).mtimeMs } catch { return 0 } } const stopDeadline = Date.now() + 8_000 let last = mtime() let still = false while (Date.now() < stopDeadline) { await new Promise(resolve => setTimeout(resolve, 400)) const now = mtime() if (now === last && now !== 0) { still = true; break } last = now } expect(still).toBe(true) }, 20_000) it('dispose awaits reaping of a same-group survivor from a completed run', async () => { // The quiescence contract also holds for a run that ALREADY resolved: the run // stays tracked in `live` until its process group is reaped, so a `dispose()` // that races a just-returned run() still awaits the survivor rather than // snapshotting an empty `live` and returning while it lives. Here the run // completes (leaving a SIGTERM-ignoring same-group descendant), then dispose() // is called; the heartbeat must be stale BY THE TIME dispose() resolves — // proving teardown waited for the reap, not merely that the reap eventually // happened. const handoff = await makeTempDir('dsh-dispose-quiesce-') const readyMarker = join(handoff, 'ready') const heartbeat = join(handoff, 'heartbeat') const { runtime, fiber } = await setup({ maxWallMs: 10_000, graceMs: 300 }) const result = await runtime.run({ program: [ 'import subprocess, sys, os, time', `marker = ${JSON.stringify(readyMarker)}`, `heartbeat = ${JSON.stringify(heartbeat)}`, 'code = ("import signal, sys, time\\n"', ' "signal.signal(signal.SIGTERM, signal.SIG_IGN)\\n"', ' "open(sys.argv[1], \'w\').close()\\n"', ' "end = time.time() + 30\\n"', ' "while time.time() < end:\\n"', ' " open(sys.argv[2], \'w\').close()\\n"', ' " time.sleep(0.05)\\n")', 'child = subprocess.Popen([sys.executable, "-c", code, marker, heartbeat],', ' stdin=subprocess.DEVNULL,', ' stdout=subprocess.DEVNULL,', ' stderr=subprocess.DEVNULL)', 'deadline = time.time() + 5', 'while not os.path.exists(marker) and time.time() < deadline:', ' time.sleep(0.02)', 'return "spawned"', ].join('\n'), bindings: [], }) expect(result.error).toBeUndefined() expect(existsSync(readyMarker)).toBe(true) // dispose() must not return until the group is reaped. After it resolves, the // heartbeat must already be stale: read its mtime, wait past the heartbeat // interval, and confirm it did not advance — the descendant is no longer // executing (reaped or zombie), so teardown was genuinely quiescent. await fiber.dispose() const mtime = (): number => { try { return statSync(heartbeat).mtimeMs } catch { return 0 } } const afterDispose = mtime() // Pin the assertion to a heartbeat that actually ran: mtime() returns 0 when // the file never existed, so without this the `toBe` below would pass // vacuously (0 === 0) if the survivor never wrote a heartbeat at all. expect(afterDispose).toBeGreaterThan(0) await new Promise(resolve => setTimeout(resolve, 500)) expect(mtime()).toBe(afterDispose) }, 20_000) it('sends SIGKILL at the poll deadline when the event loop was blocked past both timers', async () => { // If the host event loop is blocked (a big synchronous computation) from // before the group-reap poll was scheduled until after the deadline, both the // poll timer and the grace-window SIGKILL timer are overdue when the loop // resumes. Node runs the earlier-scheduled poll first, so the SIGKILL timer // may not have fired yet. The deadline arm must then send SIGKILL ITSELF // rather than cancel the unfired escalation — otherwise a SIGTERM-ignoring // same-group survivor is released for good. A synchronous busy-loop after // run() resolves reproduces the block deterministically. const handoff = await makeTempDir('dsh-deadline-') const readyMarker = join(handoff, 'ready') const heartbeat = join(handoff, 'heartbeat') const graceMs = 300 const { runtime } = await setup({ maxWallMs: 10_000, graceMs }) const result = await runtime.run({ program: [ 'import subprocess, sys, os, time', `marker = ${JSON.stringify(readyMarker)}`, `heartbeat = ${JSON.stringify(heartbeat)}`, 'code = ("import signal, sys, time\\n"', ' "signal.signal(signal.SIGTERM, signal.SIG_IGN)\\n"', ' "open(sys.argv[1], \'w\').close()\\n"', ' "end = time.time() + 30\\n"', ' "while time.time() < end:\\n"', ' " open(sys.argv[2], \'w\').close()\\n"', ' " time.sleep(0.05)\\n")', 'child = subprocess.Popen([sys.executable, "-c", code, marker, heartbeat],', ' stdin=subprocess.DEVNULL,', ' stdout=subprocess.DEVNULL,', ' stderr=subprocess.DEVNULL)', 'deadline = time.time() + 5', 'while not os.path.exists(marker) and time.time() < deadline:', ' time.sleep(0.02)', 'return "spawned"', ].join('\n'), bindings: [], }) expect(result.error).toBeUndefined() expect(existsSync(readyMarker)).toBe(true) // Block the event loop synchronously past graceMs + CLOSE_REAP_MARGIN_MS // (2000) with margin, so both timers are overdue when the loop resumes. const blockUntil = Date.now() + graceMs + 2_000 + 800 while (Date.now() < blockUntil) { /* busy-wait, no yield */ } // Yield: the overdue poll runs (group still non-empty, deadline passed) and // must send SIGKILL itself. The survivor then stops bumping the heartbeat. const mtime = (): number => { try { return statSync(heartbeat).mtimeMs } catch { return 0 } } const stopDeadline = Date.now() + 5_000 let last = mtime() let stopped = false while (Date.now() < stopDeadline) { await new Promise(resolve => setTimeout(resolve, 400)) const now = mtime() if (now === last && now !== 0) { stopped = true; break } last = now } expect(stopped).toBe(true) }, 20_000) }) describe('PythonCodeRuntime — hostile peer', () => { it('drops garbage bytes and unknown-shape frames posted directly to fd 3', async () => { // The model program can reach fd 3 and write anything. We inject a // non-JSON line, a valid JSON but unknown-shape frame, and a broken done // frame; the host must not crash, and the real `done` still settles the run. const { runtime } = await setup() const result = await runtime.run({ program: [ 'import os', 'os.write(3, b"not-json\\n")', 'os.write(3, b\'{"type":"unknown"}\\n\')', 'os.write(3, b\'{"type":"done","error":{"message":42}}\\n\')', 'return "survived"', ].join('\n'), bindings: [], }) expect(result.error).toBeUndefined() expect(result.value).toBe('survived') }) it('answers a forged call frame for an unknown binding and never crashes', async () => { // The unknown-binding reply path, driven through the id the host expects: // the program lets its own first call claim id 0 and forges id 1, which the // host answers with the `unknown binding` rejection the honest call would // have received. A forged id out of sequence is dropped instead — that is // the id-bound test below, not this one. const { runtime } = await setup({ maxWallMs: 8_000 }) let seenLegitCall = false const result = await runtime.run({ program: [ 'import os, json', 'x = await tools.echo({"ping": True})', 'os.write(3, json.dumps({"type":"call","id":1,"global":"tools","name":"forged","args":{}}).encode() + b"\\n")', // The forged frame is answered, but nothing in the child awaits id 1, so // the reply is ignored and the run completes on its own value. 'return x', ].join('\n'), bindings: tools({ echo: async (args) => { seenLegitCall = true; return args as CodeJsonValue }, }), }) expect(result.error).toBeUndefined() expect(result.value).toEqual({ ping: true }) expect(seenLegitCall).toBe(true) }, 15_000) it('caps the unknown-binding preview for a huge forged name', async () => { // The unknown-binding reply's JSON.stringify ran on the WHOLE capped // target, allocating the escaped form — up to ~6x under control-heavy // input. The preview is now built from a 1 KiB prefix, so a forged call // with a huge global/name cannot spike host memory near the value ceiling; // the reply still identifies the binding. const { runtime } = await setup({ maxWallMs: 8_000, maxValueBytes: 1024 * 1024 }) const result = await runtime.run({ program: [ 'import os, json', 'x = await tools.echo({"ping": True})', 'name = "n" * 100000', 'os.write(3, json.dumps({"type":"call","id":1,"global":"tools","name":name,"args":{}}).encode() + b"\\n")', 'return x', ].join('\n'), bindings: tools({ echo: async args => args as CodeJsonValue, }), }) expect(result.error).toBeUndefined() expect(result.value).toEqual({ ping: true }) }, 15_000) it('drops forged call frames whose ids are not the next in sequence, retaining no per-id state', async () => { // The host used to remember every answered id in a Set, so a program could // write an unbounded run of unique forged ids — each frame far below the // 64 MiB cap, so nothing rejected them — and grow host memory for the // whole run. Ids are consecutive from 0, so one counter replaces the set. // // The discriminator is that the forgeries must not be answered. Each names a // binding that does exist, so a host answering them would run `echo` once // per forgery; the count proves only the legitimate call was dispatched. // Ids also run DESCENDING, so a high-water-mark test would drop the honest // call that follows rather than the forgeries. const { runtime } = await setup() let echoCalls = 0 const result = await runtime.run({ program: [ 'import os, json', 'for i in range(2000, 0, -1):', ' os.write(3, json.dumps({"type":"call","id":i,"global":"tools","name":"echo","args":{"forged":i}}).encode() + b"\\n")', 'x = await tools.echo({"ping": True})', 'return x', ].join('\n'), bindings: tools({ echo: async (args) => { echoCalls += 1; return args as CodeJsonValue }, }), }) expect(result.error).toBeUndefined() expect(result.value).toEqual({ ping: true }) expect(echoCalls).toBe(1) }, 15_000) it('keeps answering calls a program makes after one with unserializable arguments', async () => { // The child claims an id only once its write succeeds, so a call rejected // child-side for non-lossless arguments leaves no gap. Were a gap possible, // the host's exact-successor test would drop every later call and the run // would hang to the wall ceiling instead of completing. const { runtime } = await setup({ maxWallMs: 8_000 }) const seen: unknown[] = [] const result = await runtime.run({ program: [ 'caught = ""', 'try:', ' await tools.echo({"bad": float("inf")})', 'except RuntimeError as e:', ' caught = str(e)', 'after = await tools.echo({"ok": True})', 'return {"caught": caught, "after": after}', ].join('\n'), bindings: tools({ echo: async (args) => { seen.push(args); return args as CodeJsonValue }, }), }) expect(result.error).toBeUndefined() const value = result.value as { caught: string; after: unknown } expect(value.caught).toContain('lossless JSON') expect(value.after).toEqual({ ok: true }) // The rejected call never reached the host; the one after it did. expect(seen).toEqual([{ ok: true }]) }, 15_000) it('drops a forged frame carrying an integer outside JavaScript safe range', async () => { // JSON.parse would silently round 9007199254740993 to ...992 BEFORE any // validation, corrupting a dispatched argument or completion. The host // scans the raw line and drops such frames as hostile traffic; the honest // child cannot produce one (its validator rejects unsafe ints). const { runtime } = await setup() let dispatched: unknown const result = await runtime.run({ program: [ 'import os', // Forged call frame with an unsafe int argument, then a forged done // frame with an unsafe int value — both must be dropped whole. 'os.write(3, b\'{"type":"call","id":7,"global":"tools","name":"echo","args":9007199254740993}\\n\')', 'os.write(3, b\'{"type":"done","value":9007199254740993}\\n\')', 'x = await tools.echo({"ok": True})', 'return x', ].join('\n'), bindings: tools({ echo: async (args) => { dispatched = args; return args as CodeJsonValue }, }), }) expect(result.error).toBeUndefined() // The forged done did not settle the run; the legit call and completion did. expect(result.value).toEqual({ ok: true }) expect(dispatched).toEqual({ ok: true }) }) it('truncates host-side logs once the budget is exhausted and emits the marker', async () => { // Set a tiny host-side budget; the Python side has a much larger one, so // its LogBuffer will not truncate — the host ledger fires first. const { runtime } = await setup({ maxLogBytes: 128 }) const result = await runtime.run({ program: [ 'for _ in range(50):', ' print("aaaaaaaaaa")', 'return "done"', ].join('\n'), bindings: [], }) expect(result.error).toBeUndefined() const markers = result.logs.filter(line => line.includes('log capture truncated at 128 bytes')) expect(markers.length).toBeGreaterThanOrEqual(1) }) it('reports an exception whose message holds an unpaired surrogate instead of stranding to the wall clock', async () => { // A strict UTF-8 encode of "\ud800" throws while BUILDING the failure // frame; the run would then hang to maxWallMs and misreport as timeout. const { runtime } = await setup({ maxWallMs: 8_000 }) const result = await runtime.run({ program: String.raw`raise Exception("bad \ud800 surrogate")`, bindings: [], }) expect(result.error?.kind).toBe('exception') expect(result.error?.message).toContain('bad') expect(result.error?.message).toContain('surrogate') }) it('carries a lone-surrogate completion string across the wire as its JSON escape', async () => { // UTF-8 has no encoding for a lone surrogate, but JSON does: the ASCII // `\ud800` escape, which JSON.parse reads back as the same UTF-16 code // unit. `CodeJsonValue`, `snapshotJsonValue`, and the worker backend all // accept such a string, so this backend must not narrow the shared seam. const { runtime } = await setup() const result = await runtime.run({ program: String.raw`return {"lone": "a\ud800b", "spelled": "😀"}`, bindings: [], }) expect(result.error).toBeUndefined() // The lone half survives as the code unit itself; a spelled-out high-low // PAIR folds into the astral character the host would hold for it. expect(result.value).toEqual({ lone: 'a\ud800b', spelled: '\u{1f600}' }) }) it('meters a lone surrogate at its six escaped bytes, matching the host', async () => { // The child and the host share maxValueBytes, so the child must charge the // escape's six ASCII bytes (plus two quotes): eight fits, nine does not. const { runtime } = await setup({ maxValueBytes: 8 }) const ok = await runtime.run({ program: String.raw`return "\ud800"`, bindings: [] }) expect(ok.error).toBeUndefined() expect(ok.value).toBe('\ud800') const over = await setup({ maxValueBytes: 7 }) const result = await over.runtime.run({ program: String.raw`return "\ud800"`, bindings: [] }) expect(result.error?.kind).toBe('output-limit') }) it('meters a surrogate-dense completion by counting, not by materializing a match list', async () => { // `_json_str_cost` counted lone surrogates with `_SURROGATE.findall`, // which materializes one single-character string PER surrogate: a // surrogate-dense value near the budget (each surrogate serializes to six // bytes, so a budget-sized value holds millions of them) would allocate // millions of objects before the meter returned — an O(N)-objects spike // that defeats the meter's documented contract of counting without // building. The count is now a length difference over the removal `sub` // already performs. Three million lone surrogates pin the boundary at // scale: 18,000,002 serialized bytes succeed at an 18,000,002 budget and // report output-limit one byte under, proving the meter counts every // surrogate exactly rather than dropping or over-charging any. const { runtime } = await setup({ maxValueBytes: 18_000_002 }) const ok = await runtime.run({ program: 'return "\\ud800" * 3000000', bindings: [] }) expect(ok.error).toBeUndefined() expect(ok.value).toBe('\ud800'.repeat(3_000_000)) const over = await setup({ maxValueBytes: 18_000_001 }) const result = await over.runtime.run({ program: 'return "\\ud800" * 3000000', bindings: [] }) expect(result.error?.kind).toBe('output-limit') }, 60_000) it('passes a lone-surrogate binding argument through instead of failing the call', async () => { // The argument validator shared the same over-narrow rejection; a host // binding must receive the code unit the program passed. const seen: unknown[] = [] const { runtime } = await setup() const result = await runtime.run({ program: String.raw`return await tools.echo({"text": "x\udfff"})`, bindings: tools({ echo: async (args: unknown) => { seen.push(args); return args as CodeJsonValue } }), }) expect(result.error).toBeUndefined() expect(seen).toEqual([{ text: 'x\udfff' }]) expect(result.value).toEqual({ text: 'x\udfff' }) }) it('meters a non-ASCII completion in UTF-8 JSON bytes, matching the host', async () => { // json.dumps' default \uXXXX escaping would count "é" as 8 bytes while // the host meter counts its UTF-8 JSON form (4); the shared budget must // agree, so a 4-byte-fitting value passes a maxValueBytes of 4. const { runtime } = await setup({ maxValueBytes: 4 }) const ok = await runtime.run({ program: 'return "é"', bindings: [] }) expect(ok.error).toBeUndefined() expect(ok.value).toBe('é') const over = await runtime.run({ program: 'return "éx"', bindings: [] }) expect(over.error?.kind).toBe('output-limit') }) it('filters bootstrap frames from exception-group members (TaskGroup)', async () => { // Python 3.11+ stores member stacks under TracebackException.exceptions; // the -frame filter must recurse into them too. const { runtime } = await setup() const result = await runtime.run({ program: [ 'import asyncio, sys', 'if sys.version_info < (3, 11):', ' raise ValueError("skip-old ")', 'async def boom():', ' raise ValueError("group-member")', 'async with asyncio.TaskGroup() as tg:', ' tg.create_task(boom())', ].join('\n'), bindings: [], }) expect(result.error?.kind).toBe('exception') expect(result.error?.message).toContain('') expect(result.error?.message).not.toContain('bootstrap.py') }) it('keeps frames intact when a model thread floods logs while a large frame drains', async () => { // os.write releases the GIL and a frame beyond PIPE_BUF is not atomic: // without the writer lock + full-write loop, the printing thread could // interleave bytes mid-frame and the host would drop the malformed JSON, // hanging the run to the wall clock (or losing the completion). const { runtime } = await setup({ maxValueBytes: 1024 * 1024, maxLogBytes: 4 * 1024 * 1024, maxWallMs: 15_000 }) const result = await runtime.run({ program: [ 'import threading', 'stop = False', 'def spam():', ' while not stop:', ' print("spam-line-" + "y" * 100)', 't = threading.Thread(target=spam)', 't.start()', // A ~300 KiB completion — several PIPE_BUF units — while spam runs. 'big = "x" * (300 * 1024)', 'stop = True', 't.join()', 'return big', ].join('\n'), bindings: [], }) expect(result.error).toBeUndefined() expect(result.value).toBe('x'.repeat(300 * 1024)) }, 20_000) it('settles cleanly while a daemon thread keeps writing unterminated log text', async () => { // WARNING regression: the settlement `flush_out()/flush_err()` on the main // coroutine read and clear `_LogStream._pending` and the shared LogBuffer // ledger with NO lock, while a model daemon thread's `print`/`write` mutate // the same state. Capturing the bound method (`out_stream.flush_line`) only // fixes WHICH callable runs, not what it reads mid-flight: the flush could // interleave with a concurrent write and join a `_pending` list being // mutated under it, corrupting the ledger and costing the `done` frame — the // run would then strand to the wall clock instead of completing. The shared // re-entrant lock serializes them. // // A pure data race has no single bad input to reject deterministically, so // this maximizes overlap: daemon threads emit UNTERMINATED writes (which // pile into `_pending` rather than flushing per line) right up to the moment // the body returns and settlement flushes. Repeated so the interleave lands. for (let attempt = 0; attempt < 5; attempt++) { const { runtime, fiber } = await setup({ maxLogBytes: 4 * 1024 * 1024, maxWallMs: 15_000 }) const result = await runtime.run({ program: [ 'import sys, threading', 'stop = False', 'def spam():', ' while not stop:', // No newline: the text accumulates in the stream's `_pending`, which is // exactly the state the settlement flush also touches. ' sys.stdout.write("tail-fragment-" + "z" * 64)', 'workers = [threading.Thread(target=spam, daemon=True) for _ in range(4)]', 'for t in workers: t.start()', // Let the daemons build up pending writes, then return so settlement // flushes while they are still mid-write. 'import time; time.sleep(0.05)', 'return "settled"', ].join('\n'), bindings: [], }) expect(result.error).toBeUndefined() expect(result.value).toBe('settled') await fiber.dispose() } }, 30_000) it('completes a binding called from a worker thread on its own event loop', async () => { // A binding reply Future is created on the loop that ran `dispatch`. When the // model calls a binding from a worker THREAD via `asyncio.run(tools.x(...))`, // that Future belongs to the thread's loop, not the main loop where // `_pump_replies` reads the reply. `asyncio.Future` is not thread-safe: // completing it from another thread does not wake its own loop, so a direct // `set_result` would strand the awaiting thread and the run would degrade to a // wall-clock timeout. The pump must schedule completion on the Future's own // loop via `call_soon_threadsafe`. The tight maxWallMs makes the pre-fix // failure a fast timeout rather than a hang. // // The main coroutine yields with `await asyncio.sleep` while the worker runs, // rather than a synchronous `t.join()`: joining would block the main thread, // so the main loop could not run `_pump_replies` and the call would deadlock // regardless of the fix — that blocks the pump, not the cross-loop delivery // this test pins. const { runtime } = await setup({ maxWallMs: 8_000 }) const seen: unknown[] = [] const result = await runtime.run({ program: [ 'import asyncio, threading', 'result = {}', 'def worker():', // A fresh loop in this thread; the binding Future is created here. ' result["value"] = asyncio.run(tools.echo({"from": "thread"}))', 't = threading.Thread(target=worker)', 't.start()', 'while t.is_alive():', ' await asyncio.sleep(0.02)', 'return result["value"]', ].join('\n'), bindings: tools({ echo: async (args) => { seen.push(args); return args as CodeJsonValue }, }), }) expect(result.error).toBeUndefined() expect(result.value).toEqual({ from: 'thread' }) // The host binding actually ran (the reply round-tripped), not a timeout. expect(seen).toEqual([{ from: 'thread' }]) }, 15_000) it('keeps the reply pump alive when a late reply targets a closed thread loop', async () => { // A binding called from a worker thread that ABANDONS the call (its // `asyncio.run` is cancelled) leaves the pending entry holding that thread's // loop, which `asyncio.run` closes on return. When the host later answers // that call, `_pump_replies` schedules the completion onto the closed loop — // `call_soon_threadsafe` raises `RuntimeError('Event loop is closed')`. // Unguarded, that RuntimeError ends the pump task and strands every later // reply; the guard drops the moot reply and keeps the pump serving. // // The ordering is a STRUCTURAL guarantee, not a timing window: the worker // closes its loop before the main coroutine signals `closed`; the host // answers the abandoned `slow` call (hitting the closed loop) before it // answers `release`, because `release`'s handler only resolves `slow` first // and then yields a microtask. So the pump provably meets the closed loop on // `slow`'s reply before it must deliver `release`'s. Fail-before: the pump // dies on `slow`, `release`'s reply is never read, and `await tools.release` // hangs to the (small) maxWallMs as a timeout. let releaseSlow!: () => void const slowGate = new Promise((resolve) => { releaseSlow = resolve }) const { runtime } = await setup({ maxWallMs: 6_000 }) const result = await runtime.run({ program: [ 'import asyncio, threading', 'closed = threading.Event()', 'def worker():', ' async def body():', // Abandon the call: wait_for cancels it, but the pending host-side entry // survives (dispatch does not pop on cancellation), holding this loop. ' try:', ' await asyncio.wait_for(tools.slow({}), timeout=0.1)', ' except asyncio.TimeoutError:', ' pass', ' asyncio.run(body())', // closes the thread's loop on return ' closed.set()', 't = threading.Thread(target=worker)', 't.start()', 'while not closed.is_set():', ' await asyncio.sleep(0.02)', // The loop is closed. Now the host answers slow (dead-loop reply) then // release; the pump must survive the first to deliver the second. 'after = await tools.release({})', 'return after', ].join('\n'), bindings: tools({ slow: async () => { // Answer only once the worker has closed its loop AND the main // coroutine is awaiting release, so this reply reaches the pump against // the closed loop. await slowGate return 'late' }, release: async () => { // Let slow's reply be written first, then yield a microtask so the // pump processes the dead-loop reply before release's own reply lands. releaseSlow() await new Promise(resolve => setImmediate(resolve)) return 'released' }, }), }) expect(result.error).toBeUndefined() // The pump survived the closed-loop reply and delivered the later binding. expect(result.value).toBe('released') }, 15_000) it('keeps the reply pump alive when RuntimeError is rebound before the program runs', async () => { // `_pump_replies` catches a closed-loop scheduling failure with `except // _RuntimeError`. If that name were bound as a pump BODY local, it would be // captured at pump-start — but `_run` reaches the model's top-level // statements (which run before the pump's first step, since there is no // suspension point between `create_task` and `await __dsh_main__`) with the // rebind already applied, so `_RuntimeError` would capture the REBOUND class // and the closed-loop `RuntimeError` would escape, killing the pump. Binding // it as a DEF-TIME default argument captures the original before any model // code runs. This rebinds `__main__.RuntimeError` as the very first program // statement and drives the closed-loop worker pattern: the pump must survive // the dead-loop reply and deliver the later binding. let releaseSlow!: () => void const slowGate = new Promise((resolve) => { releaseSlow = resolve }) const { runtime } = await setup({ maxWallMs: 6_000 }) const result = await runtime.run({ program: [ 'import __main__', '__main__.RuntimeError = ValueError', 'import asyncio, threading', 'closed = threading.Event()', 'def worker():', ' async def body():', ' try:', ' await asyncio.wait_for(tools.slow({}), timeout=0.1)', ' except asyncio.TimeoutError:', ' pass', ' asyncio.run(body())', ' closed.set()', 't = threading.Thread(target=worker)', 't.start()', 'while not closed.is_set():', ' await asyncio.sleep(0.02)', 'after = await tools.release({})', 'return after', ].join('\n'), bindings: tools({ slow: async () => { await slowGate; return 'late' }, release: async () => { releaseSlow(); await new Promise(resolve => setImmediate(resolve)); return 'released' }, }), }) expect(result.error).toBeUndefined() expect(result.value).toBe('released') }, 15_000) it('keeps a successful completion when _done_with_value is rebound', async () => { // `_run` calls `_done_with_value(value, max_value_bytes)` after the program // returns. The name is a module global, and this bootstrap IS `__main__`, so // `__main__._done_with_value = boom` as a program statement would otherwise // be resolved at call time and a legitimate success would be rewritten into // an `exception`. `_run` now binds `done_with_value_bound = _done_with_value` // before the program runs, so the entry name is immune; the run must still // report the success value. const { runtime } = await setup({ maxWallMs: 10_000 }) const result = await runtime.run({ program: [ 'import __main__', 'def boom(*a, **k):', ' raise RuntimeError("hijacked")', '__main__._done_with_value = boom', 'return 1', ].join('\n'), bindings: [], }) expect(result.error).toBeUndefined() expect(result.value).toBe(1) }, 15_000) it('round-trips an exactly representable large integer through a binding echo', async () => { // The reply serializer must print BigInt digits for a beyond-safe // integral double: String(2**60) emits a rounded form, and the child // would receive a DIFFERENT integer than the binding resolved. const { runtime } = await setup() const result = await runtime.run({ program: [ 'v = await tools.echo(2**60)', 'return v == 2**60', ].join('\n'), bindings: tools({ echo: async args => args as never }), }) expect(result.error).toBeUndefined() expect(result.value).toBe(true) }) it('preserves an exactly representable large integer and rejects a rounding one', async () => { // The canonical boundary accepts every JS-double-exact value: 2**53 and // 2**60 round-trip exactly and must cross (matching the worker backend); // 2**53+1 rounds and must fail as invalid-output. const { runtime } = await setup() const exact = await runtime.run({ program: 'return [2**53, 2**60]', bindings: [] }) expect(exact.error).toBeUndefined() expect(exact.value).toEqual([2 ** 53, 2 ** 60]) const lossy = await runtime.run({ program: 'return 2**53 + 1', bindings: [] }) expect(lossy.error?.kind).toBe('invalid-output') expect(lossy.error?.message).toContain('not exactly representable') }) it('rejects a container subclass whose overridden methods hide its contents', async () => { // A dict subclass returning [] from items() passes an isinstance check but // serializes as {}, so the host would receive a value the program did not // compute. Exact-type matching fails it as invalid-output instead. The // worker backend rejects the prototype-equivalent shapes the same way. const { runtime } = await setup() const hidden = await runtime.run({ program: [ 'class Sneaky(dict):', ' def items(self): return []', ' def keys(self): return []', ' def __iter__(self): return iter([])', ' def __len__(self): return 0', 'return Sneaky(secret="kept")', ].join('\n'), bindings: [], }) expect(hidden.error?.kind).toBe('invalid-output') expect(hidden.error?.message).toContain('unsupported type (Sneaky)') // A list subclass is refused on the same rule. const listish = await runtime.run({ program: ['class L(list):', ' def __iter__(self): return iter([])', 'return L([1, 2, 3])'].join('\n'), bindings: [], }) expect(listish.error?.kind).toBe('invalid-output') expect(listish.error?.message).toContain('unsupported type (L)') // The exact built-in containers still cross unchanged. const plain = await runtime.run({ program: 'return {"secret": [1, 2]}', bindings: [] }) expect(plain.error).toBeUndefined() expect(plain.value).toEqual({ secret: [1, 2] }) }) it('rejects a scalar subclass whose overrides disagree with what gets serialized', async () => { // The validators checked scalars with isinstance, so a subclass passed // every check by its real value while the ENCODER read an override — the // host then received a value the walk never approved. Each case below is a // distinct override reaching a distinct reader. const { runtime } = await setup() // _dump_float spells a float from repr(value), so an overridden __repr__ // decides the digits: F(2.5) serialized as 1. const floated = await runtime.run({ program: [ 'class F(float):', ' def __repr__(self): return "1.0"', 'return F(2.5)', ].join('\n'), bindings: [], }) expect(floated.error?.kind).toBe('invalid-output') expect(floated.error?.message).toContain('unsupported type (F)') // The JS-safe-range bound is two comparisons, so overriding them admits an // int whose true digits (json.dumps reads the C-level value) the host's // JSON.parse rounds: 9007199254740993 arrives as ...992. const inted = await runtime.run({ program: [ 'class I(int):', ' def __gt__(self, other): return False', ' def __lt__(self, other): return False', 'return I(2 ** 53 + 1)', ].join('\n'), bindings: [], }) expect(inted.error?.kind).toBe('invalid-output') expect(inted.error?.message).toContain('unsupported type (I)') // The pre-encode size bound reads len(), so overriding it to 0 admits a // string of any length past maxValueBytes. const stringed = await runtime.run({ program: [ 'class S(str):', ' def __len__(self): return 0', 'return S("Q" * 100000)', ].join('\n'), bindings: [], }) expect(stringed.error?.kind).toBe('invalid-output') expect(stringed.error?.message).toContain('unsupported type (S)') // A str-subclass dict KEY reaches the same len() bound. const keyed = await runtime.run({ program: [ 'class S(str):', ' def __len__(self): return 0', 'return {S("Q" * 100000): 1}', ].join('\n'), bindings: [], }) expect(keyed.error?.kind).toBe('invalid-output') expect(keyed.error?.message).toContain('non-string dict key (S)') // bool is an int subclass that IS lossless JSON, and the exact scalars all // still cross unchanged. const plain = await runtime.run({ program: 'return {"t": True, "f": False, "n": None, "i": 7, "d": 2.5, "s": "ok"}', bindings: [], }) expect(plain.error).toBeUndefined() expect(plain.value).toEqual({ t: true, f: false, n: null, i: 7, d: 2.5, s: 'ok' }) }) it('rejects a scalar subclass passed as a binding argument', async () => { // The uncapped binding-argument validator shares the exact-type rule, so // the call fails through its rejection contract instead of dispatching a // float whose digits come from an override. const { runtime } = await setup() const seen: CodeJsonValue[] = [] const result = await runtime.run({ program: [ 'class F(float):', ' def __repr__(self): return "1.0"', 'try:', ' await tools.echo({"v": F(2.5)})', 'except Exception as exc:', ' return str(exc)', ].join('\n'), bindings: tools({ echo: async (args) => { seen.push(args as CodeJsonValue) return null } }), }) expect(result.error).toBeUndefined() expect(result.value).toContain('unsupported type (F)') expect(seen).toEqual([]) }) it('rejects a container subclass passed as a binding argument', async () => { // Binding arguments run the uncapped validator, which must apply the same // exact-type rule: the call fails descriptively instead of dispatching a // value whose serialization disagrees with what was validated. const { runtime } = await setup() const seen: CodeJsonValue[] = [] const result = await runtime.run({ program: [ 'class Sneaky(dict):', ' def items(self): return []', 'try:', ' await tools.echo(Sneaky(secret="kept"))', 'except Exception as exc:', ' return str(exc)', ].join('\n'), bindings: tools({ echo: async (args) => { seen.push(args as CodeJsonValue) return null } }), }) expect(result.error).toBeUndefined() expect(result.value).toContain('unsupported type (Sneaky)') expect(seen).toEqual([]) }) it('fails an oversized completion as output-limit without materializing its encoding', async () => { // A 100 MiB string under maxValueBytes: 1024 must fail as output-limit. // The address-space cap leaves room for the program to BUILD the string // (one copy + interpreter) but not for the old full pre-check encode, // which materialized chunk fragments plus the joined copy (~2 more // copies) and died on RLIMIT_AS as MemoryError/worker-exit. const { runtime } = await setup({ maxValueBytes: 1024, addressSpaceMb: 384, maxWallMs: 15_000 }) const result = await runtime.run({ program: 'return "x" * (100 * 1024 * 1024)', bindings: [], }) expect(result.error?.kind).toBe('output-limit') expect(result.error?.message).toContain('exceeded 1024 bytes') }, 20_000) it('rejects a control-heavy oversized completion on its length, not its escaped copy', async () => { // Every "\x00" escapes to the six bytes "\u0000", so the escaped form of a // 40 MB string is ~240 MB. The walk must refuse on the cheap // `len(current) + 2` lower bound; the 384 MiB address space holds the raw // string but not its escaped expansion, so a pre-escape check dies on // RLIMIT_AS instead of returning output-limit. const { runtime } = await setup({ maxValueBytes: 1024, addressSpaceMb: 384, maxWallMs: 15_000 }) const result = await runtime.run({ program: 'return "\\x00" * (40 * 1024 * 1024)', bindings: [], }) expect(result.error?.kind).toBe('output-limit') expect(result.error?.message).toContain('exceeded 1024 bytes') }, 20_000) it('truncates a single print far above maxLogBytes instead of dying on the encode', async () => { // LogBuffer must reject via the cheap char-count lower bound BEFORE // UTF-8-encoding the whole string: the full encode of a ~100 MB line // would double the allocation and can breach RLIMIT_AS. 256 MiB // address space comfortably holds one copy of the 100 MB string but // not the pre-fix double allocation plus interpreter overhead spikes. const { runtime } = await setup({ maxLogBytes: 1024, addressSpaceMb: 256, maxWallMs: 15_000 }) const result = await runtime.run({ program: [ 'print("x" * (100 * 1024 * 1024))', 'return "done"', ].join('\n'), bindings: [], }) expect(result.error).toBeUndefined() expect(result.value).toBe('done') expect(result.logs.some(line => line.includes('log capture truncated'))).toBe(true) }, 20_000) it('stops host capture at the child ledger truncation, keeping exactly one marker', async () => { // The two ledgers exhaust independently. One child entry larger than // `maxLogBytes` sends ONLY the marker, so the host budget is still nearly // untouched — and the marker used to arrive as an ordinary `log` frame the // host could not tell from program output. Text written afterwards was // therefore retained AFTER the marker, contradicting the stop-after- // truncation contract, and a later host-side exhaustion could append a // second marker. The frame now carries `truncated: true`. // // `os.write(1, ...)` bypasses the child's own stream, so those bytes reach // the host as stray stdout and take the host ledger path rather than the // child's — which is exactly the route that leaked past the marker. const { runtime } = await setup({ maxLogBytes: 64, maxWallMs: 10_000 }) const result = await runtime.run({ program: [ 'import os', 'print("y" * 70000)', 'os.write(1, b"AFTER")', 'return "done"', ].join('\n'), bindings: [], }) expect(result.error).toBeUndefined() expect(result.value).toBe('done') const markers = result.logs.filter(line => line.includes('log capture truncated')) expect(markers).toHaveLength(1) // The marker is the LAST entry: nothing was retained after truncation. expect(result.logs.at(-1)).toBe(markers[0]) expect(result.logs.join('\n')).not.toContain('AFTER') }, 20_000) it('keeps one marker when a program forges repeated truncation frames', async () => { // `truncated` is attacker-reachable: the program owns fd 3 and can write the // flag itself, so the field is a hostile input rather than a trusted signal. // Repeats must collapse to the single marker the contract promises, and only // the literal `true` counts — a forged `"yes"` is rebuilt away by // validateChildFrame, so that frame stays ordinary text. const { runtime } = await setup({ maxLogBytes: 4096, maxWallMs: 10_000 }) const result = await runtime.run({ program: [ 'import os, json', 'os.write(3, json.dumps({"type":"log","text":"first","truncated":"yes"}).encode() + b"\\n")', 'os.write(3, json.dumps({"type":"log","text":"MARK-A","truncated":True}).encode() + b"\\n")', 'os.write(3, json.dumps({"type":"log","text":"MARK-B","truncated":True}).encode() + b"\\n")', 'return "done"', ].join('\n'), bindings: [], }) expect(result.error).toBeUndefined() expect(result.value).toBe('done') // The non-boolean flag did not truncate, so its text was captured normally. expect(result.logs).toContain('first') // The first genuine flag stopped capture and emitted the HOST's own marker; // the frame's own text is discarded, so neither payload appears. expect(result.logs).not.toContain('MARK-A') expect(result.logs).not.toContain('MARK-B') expect(result.logs.at(-1)).toBe(logTruncationMarker(4096)) expect(result.logs.filter(line => line.includes('log capture truncated'))).toHaveLength(1) }, 20_000) it('discards the text of a forged truncation frame instead of retaining it', async () => { // The marker branch bypasses `admit`, so retaining the frame's own text put // attacker-controlled bytes into `logs` with no cap at all: measured, a 1 MiB // forged text was retained whole under `maxLogBytes: 64`, and the only bound // left was the 64 MiB frame parse cap. The host emits its own marker instead, // so the retained size is fixed regardless of what the program sent. const forgedBytes = 1024 * 1024 const { runtime } = await setup({ maxLogBytes: 64, maxWallMs: 20_000 }) const result = await runtime.run({ program: [ 'import os, json', `big = "A" * ${forgedBytes}`, 'os.write(3, json.dumps({"type":"log","truncated":True,"text":big}).encode() + b"\\n")', 'return "done"', ].join('\n'), bindings: [], }) expect(result.error).toBeUndefined() expect(result.value).toBe('done') // Only the host marker is kept, so the total stays orders of magnitude below // what the forgery carried — and below the cap it was trying to escape. expect(result.logs).toEqual([logTruncationMarker(64)]) expect(result.logs.join('').length).toBeLessThan(forgedBytes / 1000) }, 30_000) it('coalesces unframed fd-3 fragments without recopying the sealed prefix', async () => { // The frame ceiling meters payload BYTES, but each retained chunk is its own // Buffer with object and backing-store overhead the byte count cannot see: // 5000 single-byte newline-free writes produced 5000 chunks holding 5031 // bytes, so a program pacing such writes could accumulate millions of objects // inside the wall budget and exhaust the host heap far below 256 MiB. // // The observable behavior is that the run still completes normally: the // fragments are coalesced rather than rejected, since a slow trickle of bytes // is not itself a protocol violation. // // `Buffer.concat` is wrapped for the duration so the cumulative copy volume // is measured rather than inferred: that total is what separates sealing into // blocks from re-merging the whole buffer, and both shapes pass every // behavioral assertion below. // // The trickle is terminated with its own newline before the real frame is // written. Without that, those 5000 bytes prefix the frame on the SAME line, // which then parses as junk and is dropped — correct framing behavior, but it // would leave this test asserting the wrong thing. // Bound at capture: `Buffer.concat` is a static method, and taking a bare // reference to one trips no-unbound-method. const realConcat = Buffer.concat.bind(Buffer) let copied = 0 Buffer.concat = (list: readonly Uint8Array[], total?: number): Buffer => { for (const part of list) copied += part.length return realConcat(list, total) } const program = [ 'import os', // Newline-free single-byte writes, spaced so each lands as its own read. // 60000 rather than 5000: the trickle has to cross the seal threshold // enough times for the two shapes to separate. At 5000 writes there are // only four seals, so even the quadratic form copies well under a // megabyte and the budget below could not tell them apart. 'for _ in range(60000):', ' os.write(3, b"x")', ' os.sched_yield()', 'os.write(3, b"\\n")', // A real frame after the trickle proves framing still works on the // coalesced residual. 'print("after-trickle")', 'return "done"', ].join('\n') let result: CodeRunResult try { const { runtime } = await setup({ maxWallMs: 30_000 }) result = await runtime.run({ program, bindings: [] }) } finally { Buffer.concat = realConcat } expect(result.error).toBeUndefined() expect(result.value).toBe('done') expect(result.logs).toContain('after-trickle') // Sealing appends a finished block rather than re-merging everything held, so // each byte is copied once. Re-concatenating the whole buffer at every // threshold made the cumulative copy volume quadratic — 10 MiB trickled a // byte at a time copies 53.7 GB that way. A per-byte-copied budget is the // discriminator, and it is measured rather than reasoned about: this shape // copies about 119 KB for 60000 trickled bytes, the re-merging shape about // 540 KB. 256 KiB sits between them with margin on both sides — most writes // are coalesced by the pipe before they reach us, so the observed ratio is // smaller than the asymptotic one, and the threshold has to sit where a real // measurement lands rather than where the asymptote suggests. expect(copied).toBeLessThan(256 * 1024) }, 40_000) it('seals trickled stray fragments into blocks without recopying the sealed prefix', async () => { // The stray-capture buffer has the same object-overhead exposure as the fd-3 // reader above: each newline-free `data` chunk is its own Buffer, so a // program pacing single-byte `os.write(1, ...)` accumulates one object per // write, which the serialized-cost counter cannot see. Past MAX_PENDING_CHUNKS // the fragments seal into a finished block; re-merging the whole residual at // each threshold instead would copy the sealed prefix again and again, making // the cumulative copy volume quadratic. `Buffer.concat` is wrapped to measure // that volume — both shapes admit the same final log entry, so the copy total // is the discriminator. maxLogBytes is raised so the trickle is retained, // not truncated, which is what forces the fragments to accumulate and seal. const realConcat = Buffer.concat.bind(Buffer) let copied = 0 Buffer.concat = (list: readonly Uint8Array[], total?: number): Buffer => { for (const part of list) copied += part.length return realConcat(list, total) } let result: CodeRunResult try { const { runtime } = await setup({ maxLogBytes: 200_000, maxWallMs: 30_000 }) result = await runtime.run({ program: [ 'import os', 'for _ in range(60000):', ' os.write(1, b"x")', ' os.sched_yield()', 'os.write(1, b"\\n")', 'return "done"', ].join('\n'), bindings: [], }) } finally { Buffer.concat = realConcat } expect(result.error).toBeUndefined() expect(result.value).toBe('done') // The trickle coalesces into one log line (no interior newlines). Its exact // length depends on pipe coalescing, but it is one entry and non-empty. expect(result.logs.length).toBe(1) expect((result.logs[0] as string).length).toBeGreaterThan(0) // Sealing appends a finished block rather than re-merging everything held, so // each byte is copied a bounded number of times. Re-merging the whole // residual at every seal threshold instead makes the cumulative copy volume // quadratic. Measured like the fd-3 sibling above rather than reasoned about: // this sealed shape copies about 120 KB for 60000 trickled bytes, the // re-merging shape about 538 KB (the stray path adds one whole-residual // concat at the terminating newline over the fd-3 sibling's 119/540, landing // at the same order). 256 KiB sits between them with margin on both sides, so // reverting the seal to a re-merge turns this assertion red. expect(copied).toBeLessThan(256 * 1024) }, 40_000) it('caps a huge exception diagnostic child-side before it crosses the wire', async () => { // A program can raise with a multi-megabyte message; the child must cap // it at maxValueBytes before formatting/sending, not ship the whole // payload for the host to truncate after parsing. const { runtime } = await setup({ maxValueBytes: 1024 }) const result = await runtime.run({ program: 'raise ValueError("boom-" + "x" * (8 * 1024 * 1024))', bindings: [], }) expect(result.error?.kind).toBe('exception') expect(result.error?.message).toContain('boom-') expect(result.error?.message.endsWith('… [truncated]')).toBe(true) expect(Buffer.byteLength(result.error?.message ?? '', 'utf8')).toBeLessThan(2048) }) it('caps a control-heavy exception diagnostic by its serialized cost, not raw bytes', async () => { // The diagnostic crosses fd 3 inside a JSON frame where a control character // escapes sixfold (a NUL is one raw byte, six as `\u0000`). Capping by raw // UTF-8 length would let a NUL-heavy message near maxValueBytes serialize to // ~6x that and breach the frame ceiling — the silent worker-exit inversion // the load-time cap check exists to prevent. The child meters the diagnostic // by its serialized cost, so a NUL flood is truncated to fit the frame and // the run still reports the exception rather than a worker-exit. const { runtime } = await setup({ maxValueBytes: 4096 }) const result = await runtime.run({ // 512 KiB of NUL: ~3 MiB once escaped, far past the 4 KiB cap. program: 'raise ValueError("\\x00" * (512 * 1024))', bindings: [], }) expect(result.error?.kind).toBe('exception') expect(result.error?.message.endsWith('… [truncated]')).toBe(true) // The SERIALIZED form (what the frame carried) fits the budget, so its raw // length is well under it too — a raw-byte cap would have admitted ~4 KiB of // NULs that serialize to ~24 KiB. const serialized = JSON.stringify(result.error?.message ?? '') expect(Buffer.byteLength(serialized, 'utf8')).toBeLessThanOrEqual(4096 + 8) }) it('bounds a newline-free partial-line flood while the program is still running', async () => { // print("x", end="") never completes a line, so nothing reaches the // Python LogBuffer until settlement — the buffered tail must still hit // the budget mid-run instead of growing without bound to RLIMIT/timeout. const { runtime } = await setup({ maxLogBytes: 1024, maxWallMs: 15_000 }) const result = await runtime.run({ program: [ 'for _ in range(100000):', ' print("xxxxxxxxxx", end="")', 'return "done"', ].join('\n'), bindings: [], }) expect(result.error).toBeUndefined() expect(result.value).toBe('done') expect(result.logs.some(line => line.includes('log capture truncated'))).toBe(true) // The retained text is bounded by the budget, not the 1 MB the program wrote. expect(result.logs.join('\n').length).toBeLessThan(4096) }, 20_000) it('discards empty writes instead of buffering one list slot each', async () => { // An empty chunk adds no character, so the mid-run budget check (which // compares buffered CHARS against the remaining ledger) can never fire on // it. Buffering empty strings therefore grew `_pending` without bound — // millions of slots per CPU second — until RLIMIT_AS turned an append into // a MemoryError, long after the log ledger was exhausted. Two million // empty writes must instead settle normally and contribute NO log entry, // proving the chunk was dropped rather than joined at flush_line. const { runtime } = await setup({ maxLogBytes: 256, addressSpaceMb: 256, maxWallMs: 20_000 }) const result = await runtime.run({ program: [ 'import sys', 'for _ in range(2000000):', ' sys.stdout.write("")', 'return "done"', ].join('\n'), bindings: [], }) expect(result.error).toBeUndefined() expect(result.value).toBe('done') expect(result.logs).toEqual([]) }, 30_000) it('stops scanning a single-write newline flood once the log ledger truncates', async () => { // One write carrying half a million newlines: the offset scan must exit the // instant LogBuffer truncates rather than re-slicing and pushing every // remaining line. If it kept scanning it would exhaust the CPU/wall budget; // the run instead settles quickly with exactly one truncation marker. const { runtime } = await setup({ maxLogBytes: 256, maxWallMs: 10_000 }) const start = Date.now() const result = await runtime.run({ program: ['print("x\\n" * 500000, end="")', 'return "done"'].join('\n'), bindings: [], }) expect(result.error).toBeUndefined() expect(result.value).toBe('done') expect(result.logs.filter(line => line.includes('log capture truncated'))).toHaveLength(1) expect(Date.now() - start).toBeLessThan(8_000) }, 15_000) it('bounds an oversized newline-terminated write before joining and slicing it', async () => { // The newline branch slices the first line out of the write before // `LogBuffer.push` can apply its cheap budget rejection, so a single // over-budget write cost a full extra copy of itself in peak address space — // the amplification that bound exists to avoid, applied one layer too late. // Measured under a 400 MiB addressSpaceMb with the slice unbounded: writes // of 200 MiB and up died on MemoryError inside `sys.stdout.write`, reported // as the PROGRAM's own exception rather than the promised truncation marker. // `"\\n".rjust(n, "A")` is a single allocation ending in the newline, so the // payload itself fits and the only remaining allocation is the stream's own // slice; 340 MiB of a 400 MiB cap cannot survive one more copy of it. const { runtime } = await setup({ maxLogBytes: 256, addressSpaceMb: 400, maxWallMs: 30_000 }) const result = await runtime.run({ program: [ 'import sys', 'payload = "\\n".rjust(340 * 1024 * 1024, "A")', 'sys.stdout.write(payload)', 'return "done"', ].join('\n'), bindings: [], }) expect(result.error).toBeUndefined() expect(result.value).toBe('done') expect(result.logs).toEqual([logTruncationMarker(256)]) }, 40_000) it('bounds a newline-free write against the already-buffered chunks before joining them', async () => { // The newline-free arm buffers the write and then compared the buffered // CHARACTER COUNT against the ledger — correct — but paid for the comparison // with `"".join(self._pending)`, a second full copy of everything held. One // buffered character is enough to make that join a copy of the whole // following write. Measured under a 400 MiB addressSpaceMb with a 340 MiB // second write: the join raised MemoryError inside `sys.stdout.write`, and // because the oversized chunks stayed in `_pending` the settlement // `flush_line` raised it again — that throw sits after the `except // BaseException` block, so it costs the `done` frame and the run came back // `timeout: wall-clock ceiling reached (30000ms)` with no logs at all. The // bound must be applied BEFORE the join and the chunks dropped on that path, // so the run settles with the truncation marker it promises. const { runtime } = await setup({ maxLogBytes: 256, addressSpaceMb: 400, maxWallMs: 30_000 }) const result = await runtime.run({ program: [ 'import sys', // One unterminated character first, so `_pending` is non-empty and the // large write cannot take the "buffered text IS the write" shortcut. 'sys.stdout.write("x")', 'payload = "A" * (340 * 1024 * 1024)', 'sys.stdout.write(payload)', 'return "done"', ].join('\n'), bindings: [], }) expect(result.error).toBeUndefined() expect(result.value).toBe('done') expect(result.logs).toEqual([logTruncationMarker(256)]) }, 40_000) it('bounds a newline-terminated write against the already-buffered chunks before joining them', async () => { // Same allocation, reached through the newline arm: with chunks pending, the // whole write used to be appended and joined so the offset scan could run // over one string. Only the FIRST line needs those chunks, so a pending // chunk plus a 340 MiB newline-terminated write under a 400 MiB // addressSpaceMb died on MemoryError in the join before the per-line bound // could reject anything, and the retained chunks made the settlement flush // die the same way: measured, `timeout: wall-clock ceiling reached // (30000ms)`. The reconstructed first line is now checked against the ledger // and only a budget-sized prefix of it is copied; the rest of the write is // scanned in place. const { runtime } = await setup({ maxLogBytes: 256, addressSpaceMb: 400, maxWallMs: 30_000 }) const result = await runtime.run({ program: [ 'import sys', 'sys.stdout.write("x")', 'payload = "\\n".rjust(340 * 1024 * 1024, "A")', 'sys.stdout.write(payload)', 'return "done"', ].join('\n'), bindings: [], }) expect(result.error).toBeUndefined() expect(result.value).toBe('done') expect(result.logs).toEqual([logTruncationMarker(256)]) }, 40_000) it('emits pending text on an explicit flush, before the run can be killed', async () => { // `_LogStream` inherits TextIOBase's no-op `flush()`, so an explicit // `print(..., flush=True)` or `sys.stdout.flush()` left the text in // `_pending` with nothing to drain it but `flush_line` after settlement — a // call a hanging or killed run never reaches. Measured: printing // "before hang" with flush=True ahead of an infinite loop returned // `logs: []`, losing the one diagnostic the program deliberately committed. const { runtime } = await setup({ maxWallMs: 4_000 }) const result = await runtime.run({ program: [ 'import sys', 'print("before hang", end="", flush=True)', 'while True: pass', ].join('\n'), bindings: [], }) expect(result.error?.kind).toBe('timeout') expect(result.logs).toContain('before hang') }, 15_000) it('marks a dropped tail when the ledger lands on exactly zero remaining', async () => { // One 100-character line costs 103 serialized bytes (quotes + separator), // consuming a 104-byte budget minus the 1-byte array-envelope reservation // (104 - 1 = 103) EXACTLY. Landing on zero never trips // LogBuffer's "cost > remaining" branch, so `_truncated` stays unset and the // stream's own `remaining > 0` guard silently discarded the unscanned tail — // the run reported a complete log while dropping text. The tail must be // pushed so the marker is emitted. (This surfaced only after empty writes // stopped being buffered: `print` issues a trailing `write("")` whose // buffered-empty path used to force the marker out incidentally.) A single // wide line is used rather than many narrow ones so the CHILD ledger is the // one that lands on zero: the host's identical ledger truncates first when // many small entries precede the long marker text. `["y"*100]` serializes to // exactly 104 bytes (103 payload + 1 envelope), so 104 is the smallest // budget that admits the entry. const { runtime } = await setup({ maxLogBytes: 104, maxWallMs: 10_000 }) const result = await runtime.run({ program: ['print("y" * 100 + "\\n" + "z" * 10, end="")', 'return "done"'].join('\n'), bindings: [], }) expect(result.error).toBeUndefined() expect(result.value).toBe('done') expect(result.logs).toContain('y'.repeat(100)) expect(result.logs.filter(line => line.includes('log capture truncated'))).toHaveLength(1) // The dropped tail is not retained, but its loss is now reported. expect(result.logs.some(line => line.includes('z'))).toBe(false) }, 15_000) it('keeps an admitted log within the serialized array envelope at the exact limit', async () => { // Each entry is charged its JSON-string cost plus one separator byte, and // the serialized outer logs array adds one more byte of envelope (two // brackets and n-1 commas). The ledgers reserve that byte, so a result that // exactly exhausts the ledger still serializes within the configured cap. // At the 64-byte floor (the smallest admissible maxLogBytes): ledger 63, // a 60-character line serializes as `"aaa...a"` (62 bytes) + 1 separator // = 63, exactly exhausting the ledger and serializing as `["aaa...a"]` // = 64 = the cap; a 61-character line costs 64 > 63 and truncates. The // marker rides envelope, so the serialized logs run to cap + marker. const { runtime } = await setup({ maxLogBytes: 64, maxWallMs: 10_000 }) const result = await runtime.run({ program: ['print("a" * 60 + "\\n" + "b" * 61, end="")', 'return "done"'].join('\n'), bindings: [], }) expect(result.error).toBeUndefined() expect(result.value).toBe('done') // The 60-character line was admitted; the 61-character line was not (a // single 'b' would also match the marker's "bytes", so check for the line). expect(result.logs).toContain('a'.repeat(60)) expect(result.logs.some(line => line.includes('b'.repeat(61)))).toBe(false) expect(result.logs.some(line => line.includes('log capture truncated'))).toBe(true) }, 15_000) it('rejects a log budget too small to serialize the truncation marker', async () => { // A maxLogBytes below 64 cannot serialize the truncation marker itself; // it is rejected at construction so a marker-only truncated run cannot // report more than the public cap. maxValueBytes keeps no floor beyond the // positive-integer requirement (a completion can be 1 byte). await expect(setup({ maxLogBytes: 63, maxWallMs: 10_000 })).rejects.toThrow(/must be at least 64/) }, 15_000) it('charges the JSON-escaped cost of control characters against the log ledger', async () => { // A NUL renders as \u0000 (6 bytes) in the serialized outer logs; the // ledger must charge that expansion, or a control-character flood admits // 6x the configured cap. const { runtime } = await setup({ maxLogBytes: 256 }) const result = await runtime.run({ program: [ 'for _ in range(500):', ' print("\\x00" * 10)', 'return "done"', ].join('\n'), bindings: [], }) expect(result.error).toBeUndefined() expect(result.logs.some(line => line.includes('log capture truncated'))).toBe(true) // Serialized (escaped) size of retained entries stays in the budget's // neighborhood: well under the ~30 kB an uncharged flood would retain. const serialized = Buffer.byteLength(JSON.stringify(result.logs), 'utf8') expect(serialized).toBeLessThan(1024) }) it('charges the serialized cost child-side, so a control-heavy line truncates instead of being admitted whole', async () => { // The child's ledger must charge what the entry costs on the wire, not its // raw UTF-8 length: a NUL is one raw byte but six as its escape. A 24 MiB NUL // line clears the cheap char-count lower bound (24 MiB < 32 MiB budget), so // charging raw bytes would ADMIT it and emit a ~144 MiB escaped entry; // charging the serialized cost (~144 MiB > the 32 MiB budget) rejects it // before any encode and emits the marker instead. The address space (512 MiB, // clearing the 12x load gate for a 32 MiB budget) is sized so the run loads; // the gate separately guarantees a correctly-charged near-budget entry fits. const { runtime } = await setup({ maxLogBytes: 32 * 1024 * 1024, addressSpaceMb: 512, maxWallMs: 20_000 }) const result = await runtime.run({ program: [ 'print("\\x00" * (24 * 1024 * 1024))', 'return "done"', ].join('\n'), bindings: [], }) expect(result.error).toBeUndefined() expect(result.value).toBe('done') expect(result.logs.filter(line => line.includes('log capture truncated'))).toHaveLength(1) // Nothing of the line itself was retained: the ledger refused the whole entry. expect(result.logs.every(line => !line.includes(String.fromCharCode(0)))).toBe(true) }, 30_000) it('bounds a huge unterminated tail after an early newline without copying it whole', async () => { // The newline branch of _LogStream.write buffered the whole unterminated // tail after the last newline into `_pending` before the flush trigger could // bound it, so an early newline followed by a huge tail made a second full // copy of the model's own string — a MemoryError the config gate cannot // catch (the tail far exceeds maxLogBytes). The tail is now sliced to a // budget-sized prefix, so the run truncates and completes. Linux-only RLIMIT_AS // repro (Darwin skips the limit); on macOS this asserts the happy path. // // Sizing: the model builds `tail` (N) then the `"\n" + tail` write argument // (another ~N), so construction peaks at ~2N — kept under the 384 MiB address // space at N = 150 MiB (~300 MiB). The pre-fix code then buffered the whole // ~150 MiB tail again, pushing past 384 MiB; the sliced prefix does not. const { runtime } = await setup({ maxLogBytes: 256, addressSpaceMb: 384, maxWallMs: 20_000 }) const result = await runtime.run({ program: [ 'import sys', 'tail = "A" * (150 * 1024 * 1024)', 'sys.stdout.write("\\n" + tail)', 'return "done"', ].join('\n'), bindings: [], }) expect(result.error).toBeUndefined() expect(result.value).toBe('done') expect(result.logs.some(line => line.includes('log capture truncated'))).toBe(true) }, 30_000) it('flushes logs before framing the value so their peaks do not add against RLIMIT_AS', async () => { // The load gate bounds maxLogBytes and maxValueBytes INDEPENDENTLY against the // address space, each at the 12x worst case. But the child framed the // completion value (materializing its escaped form to meter it, then encoding // the frame) while a newline-free log tail still sat unflushed in _pending. // Those two peaks added: two budgets each admitted alone could together breach // RLIMIT_AS, dying as worker-exit instead of settling. The flush now runs // before the value is framed, so the log pending is freed first. // // Config: 32 MiB each against 512 MiB (each 32*12 = 384 MiB < 448 MiB // budgetable, so both load). The program writes ~33M astral chars with no // newline (buffered ~132 MB, under the char-count flush trigger) then returns // ~33M astral chars — a ~132 MB serialized value that is itself OVER the 32 MiB // maxValueBytes, so the correct outcome is `output-limit`. Pre-fix the // unflushed 132 MB plus the value's build-and-encode (~396 MB) exceeded 512 MiB // and OOM'd (reported as exception/worker-exit); flushing first lets the value // check complete (~460 MB alone) and report output-limit. On Darwin (no // RLIMIT_AS) the value is over budget too, so output-limit holds either way; // the OOM the reorder prevents is the Linux-only failure. const { runtime } = await setup({ maxLogBytes: 32 * 1024 * 1024, maxValueBytes: 32 * 1024 * 1024, addressSpaceMb: 512, maxWallMs: 20_000, }) const result = await runtime.run({ program: [ 'import sys', 'sys.stdout.write("\\U0001F600" * 33_000_000)', 'return "\\U0001F600" * 33_000_000', ].join('\n'), bindings: [], }) expect(result.error?.kind).toBe('output-limit') }, 30_000) it('checks and encodes a wide completion value in O(depth), not O(width)', async () => { // A wide flat list serializes to ~2 bytes per element but the pre-fix walk // enqueued one traversal tuple per element (_check_done_value) and one stack // entry plus a separator marker per element (_encode_json_plain) — ~56 bytes // per element, ~28x the serialized size. A value the byte meter admits could // therefore OOM on the checker's or encoder's own bookkeeping, the inversion // the load gate exists to prevent (the gate reserves 12x, not 28x). Both now // walk with an O(depth) cursor that pulls one child at a time, so the only // width-proportional allocation is the output string the meter bounded. // // Config: maxValueBytes 20 MiB against 384 MiB (20*12 = 240 MiB < 320 MiB // budgetable, so it loads). `[0] * 6_000_000` is ~12 MB of JSON, under the // 20 MiB budget, so it must round-trip. Pre-fix the ~400 MB of per-element // frames plus the interpreter exceeded 384 MiB and returned MemoryError as an // exception. Linux-only RLIMIT_AS repro; on macOS the value round-trips // either way, but the fixture stays within the address space so it is honest. // // `maxWallMs` is 60s, not the 20s the memory assertion alone needs: the O(depth) // cursor pulls 6M elements one at a time through Python-level frames, which costs // ~11s on an idle machine and more under the coverage lane's V8 instrumentation // with several workers sharing a box. This budget bounds the run without letting a // loaded runner's scheduling latency read as a `timeout` — what this test asserts // is the O(depth) memory shape, not a speed claim. const { runtime } = await setup({ maxValueBytes: 20 * 1024 * 1024, addressSpaceMb: 384, maxWallMs: 60_000 }) const result = await runtime.run({ program: 'return [0] * 6_000_000', bindings: [] }) expect(result.error).toBeUndefined() expect(Array.isArray(result.value)).toBe(true) expect((result.value as number[]).length).toBe(6_000_000) }, 90_000) it('validates wide binding arguments in O(depth), not O(width)', async () => { // The completion-value walks are budgeted; this one is not. `dispatch` runs // `_lossless_json_violation` on the arguments the MODEL built, and no // child-side byte budget bounds them first: the frame ceiling is the host's // and applies only after this validation returns. A per-member traversal // frame therefore turned a legitimate call into the program's own // MemoryError. Measured with tracemalloc on the two walk shapes over this // exact argument (JSON ~17 MB): the cursor peaks at 0.0 MiB of auxiliary // state, the pre-fix `stack.extend` at 459.1 MiB -- past the 384 MiB // configured below, so the discriminating failure is real. It is Linux-only: // Darwin skips RLIMIT_AS, so this case round-trips there either way. // // The binding echoes its argument's length back, so the assertion proves the // call actually round-tripped rather than merely avoiding a crash. const { runtime } = await setup({ addressSpaceMb: 384, maxWallMs: 60_000 }) const result = await runtime.run({ program: 'return await tools.width([0] * 6_000_000)', bindings: [{ global: 'tools', functions: { width: async (items: unknown) => (items as number[]).length }, }], }) expect(result.error).toBeUndefined() expect(result.value).toBe(6_000_000) }, 90_000) it('decodes a multi-megabyte binding reply without regex backtracking state', async () => { // The child parses every host reply with `_decode_json_plain`. Its scalar // regex matched strings with a `(?:[^"\\]|\\.)*` repetition, which makes // CPython's backtracking engine retain state proportional to the string's // WIDTH -- measured at ~146 MiB of engine state for a 1 MiB string and // ~558 MiB for 4 MiB. A legitimate multi-megabyte reply therefore raised // MemoryError inside `_pump_replies`; because that pump is the only settler // of the call's future, the run stranded until the wall clock reported a // `timeout` instead of returning the value the binding produced. // // Strings now scan chunk-to-chunk over a character class (no backtracking // state). Measured on this exact 4 MiB reply: the pre-fix regex peaks at // 557.8 MiB, past the default 512 MiB address space, while the scanner peaks // at the 4.0 MiB result itself. Linux-only, like the other RLIMIT_AS repros: // Darwin does not apply the limit, so the spike is merely allocated there. const reply = 'A'.repeat(4 * 1024 * 1024) const { runtime } = await setup({ maxWallMs: 60_000 }) const result = await runtime.run({ program: 'value = await tools.big({})\nreturn len(value)', bindings: [{ global: 'tools', functions: { big: async () => reply } }], }) expect(result.error).toBeUndefined() expect(result.value).toBe(reply.length) }, 90_000) it('drops a late binding resolution before snapshotting it', async () => { // `sendReply` checks `settled`, but only after the resolution has been walked // and copied by `snapshotJsonValue`. Binding resolution carries no seam-level // byte cap, so a binding that resolves a wide value AFTER the run already // settled (here on `maxWallMs`) spent host heap building a frame that is then // discarded. The check now runs before the snapshot. // // The binding resolves well after the 1s wall clock with a 2M-element array; // the run must still report `timeout`, and the late value must not appear. let resolvedLate = false const { runtime } = await setup({ maxWallMs: 1_000 }) const result = await runtime.run({ program: 'return await tools.slow({})', bindings: [{ global: 'tools', functions: { slow: async () => { await new Promise(resolve => setTimeout(resolve, 2_500)) resolvedLate = true return Array.from({ length: 2_000_000 }, () => 0) }, }, }], }) expect(result.error?.kind).toBe('timeout') expect(result.value).toBeUndefined() // Pin that the late path actually ran, so the assertion above is not vacuous. await new Promise(resolve => setTimeout(resolve, 2_000)) expect(resolvedLate).toBe(true) }, 90_000) it('paces concurrent binding replies instead of queueing every frame at once', async () => { // Binding resolution carries no seam-level byte cap. Before pacing, a program // resolving several large values in one `asyncio.gather` round encoded them // all in the same turn and queued every frame in fd 3's writable buffer, // which exhausted the host heap and killed the whole process rather than // failing the run. Replies are now encoded one at a time, waiting for // `drain` when the pipe is full. // // Eight concurrent 4 MiB replies (32 MiB of frames) must all round-trip. The // program sums the lengths, so the assertion proves every reply arrived and // was matched to its own call -- pacing must not drop or misroute any. What // this case cannot show is the peak itself, which lives in the stream's // buffer: measured directly on a 64 KiB-highWaterMark pipe with this same // 8x4 MiB shape, the unpaced writes buffered 32.0 MiB while the paced ones // peaked at 0.0 MiB. const chunk = 'A'.repeat(4 * 1024 * 1024) const { runtime } = await setup({ maxWallMs: 60_000 }) const result = await runtime.run({ program: [ 'import asyncio', 'parts = await asyncio.gather(*[tools.chunk({}) for _ in range(8)])', 'return sum(len(p) for p in parts)', ].join('\n'), bindings: [{ global: 'tools', functions: { chunk: async () => chunk } }], }) expect(result.error).toBeUndefined() expect(result.value).toBe(8 * chunk.length) }, 90_000) it('drops queued binding replies when the child dies mid-drain, without hanging', async () => { // drainReplies waits for `drain` when fd 3's buffer is full. If the child // exits while a reply is queued, the pipe never emits `drain` again — the // wait must also settle on `close`/`error`/destroyed, or `draining` stays // true and the queue is pinned with the closure forever. The program fills // the pipe with a wide binding reply and then exits without reading it, so // the host is blocked mid-drain when the child dies; the run must still // settle promptly (worker-exit from the close) rather than hanging on the // drain wait. const chunk = 'A'.repeat(4 * 1024 * 1024) const { runtime } = await setup({ maxWallMs: 10_000 }) const result = await runtime.run({ program: [ 'import asyncio', // Resolve a reply big enough to backpressure fd 3, then exit without // reading it: the child's `close` lands while the host still waits for // `drain`, exercising the destroyed-pipe branch of the reply drain. 'pending = asyncio.create_task(tools.chunk({}))', 'await asyncio.sleep(0.05)', 'return "done"', ].join('\n'), bindings: [{ global: 'tools', functions: { chunk: async () => chunk } }], }) // The program returned, so the completion wins over the mid-flight reply; // whatever the result, the run must settle (no hang on the drain wait). expect(result.error).toBeUndefined() expect(result.value).toBe('done') }, 30_000) it('caps the pending reply backlog when a child floods calls without reading its replies', async () => { // drainReplies writes one reply at a time and waits for `drain` when fd 3's // buffer is full. A child that never reads its replies (it only writes // call frames, never draining the reply side) leaves the pipe full, so // every call frame it keeps sending resolves a binding and adds a reply the // drain cannot write: without a bound, the backlog grows until the wall // clock, pinning each binding result in host memory. The cap settles the // run as worker-exit instead, mirroring the frame cap's treatment of an // oversized frame. The child floods 5000 sequential valid calls and never // reads fd 3 (its reply pump is starved by the synchronous write loop and // the blocking sleep); the pipe buffer absorbs ~1600 tiny replies, so the // pending backlog crosses MAX_PENDING_REPLIES long before maxWallMs, and // the run must settle worker-exit with the reply-queue message, not a // wall-clock timeout. const { runtime } = await setup({ maxWallMs: 30_000 }) const result = await runtime.run({ program: [ 'import os, time', 'frame = b\'{"type":"call","id":%d,"global":"tools","name":"echo","args":{}}\\n\'', 'for i in range(5000):', ' view = memoryview(frame % i)', ' while view:', ' view = view[os.write(3, view):]', // Keep the child alive without reading fd 3: the run must settle via // the reply-backlog cap, not by the child finishing or exiting. 'time.sleep(30)', 'return "unreachable"', ].join('\n'), bindings: [{ global: 'tools', functions: { echo: async (args: unknown) => args as CodeJsonValue } }], }) expect(result.error?.kind).toBe('worker-exit') expect(result.error?.message).toContain('reply queue exceeded') }, 30_000) it('caps the outstanding binding-call backlog when a child floods calls against a binding that never settles', async () => { // The reply backlog cap only counts RESOLVED calls (`pendingReplies` grows // after the await), so a child flooding calls against a binding whose // promise never settles would accumulate one async closure per frame until // the wall clock without tripping it. The outstanding-call counter bounds // the in-flight closures to MAX_PENDING_REPLIES and settles the run as // worker-exit, mirroring the reply cap. The binding below never resolves, // so no reply is ever produced; the flood of 5000 sequential calls must // cross the in-flight bound long before maxWallMs. const { runtime } = await setup({ maxWallMs: 30_000 }) const result = await runtime.run({ program: [ 'import os, time', 'frame = b\'{"type":"call","id":%d,"global":"tools","name":"hang","args":{}}\\n\'', 'for i in range(5000):', ' view = memoryview(frame % i)', ' while view:', ' view = view[os.write(3, view):]', 'time.sleep(30)', 'return "unreachable"', ].join('\n'), bindings: [{ global: 'tools', functions: { hang: async () => await new Promise(() => {}) } }], }) expect(result.error?.kind).toBe('worker-exit') expect(result.error?.message).toContain('call backlog exceeded') }, 30_000) it('runs a legitimate gather of more than 1024 concurrent binding calls', async () => { // The in-flight call cap must not count a synchronous batch of instant // calls: the async bodies' finallys run on the microtask queue, which // drains only between 'data' events, so a per-frame check would trip on // the 1025th frame of a single event even though every binding settled // immediately — killing a valid large concurrent gather as worker-exit. // The cap is checked at event boundaries (after the microtask queue // drained), so this gather of 1025 instant calls completes. const { runtime } = await setup({ maxWallMs: 30_000 }) const result = await runtime.run({ program: [ 'import asyncio', 'return len(await asyncio.gather(*[tools.echo(i) for i in range(1025)]))', ].join('\n'), bindings: [{ global: 'tools', functions: { echo: async (args: unknown) => args as CodeJsonValue } }], }) expect(result.error).toBeUndefined() expect(result.value).toBe(1025) }, 30_000) it('completes normally when a program returns with binding calls still outstanding', async () => { // The in-flight call cap refuses to admit NEW calls past the bound; it must // not reclassify a `done` frame as worker-exit just because the program // returned with calls it started but never awaited. The child schedules // exactly 1024 slow bindings (still pending when the program returns), so // the done frame arrives with the outstanding count AT the cap — the event // must complete with its value, not settle as `call backlog exceeded`. const { runtime } = await setup({ maxWallMs: 30_000 }) const result = await runtime.run({ program: [ 'import asyncio', 'for i in range(1024):', ' asyncio.create_task(tools.slow(i))', 'await asyncio.sleep(0.2)', 'return "done"', ].join('\n'), bindings: [{ global: 'tools', functions: { slow: async () => { await new Promise((resolve) => { setTimeout(resolve, 5_000) }); return 1 } }, }], }) expect(result.error).toBeUndefined() expect(result.value).toBe('done') }, 30_000) it('settles a single-batch never-settling flood as worker-exit without further frames', async () => { // The outstanding-call cap must take effect even when the whole flood fits // in ONE data event: a per-event admission snapshot never re-checks once no // further frames arrive, so a single 62 KiB write of 1025 compact calls // against a never-settling binding would otherwise wait out the full wall // clock instead of tripping the cap. The post-macrotask check runs after // the batch's finallys (which never run for this binding) and settles the // run as worker-exit long before maxWallMs. const { runtime } = await setup({ maxWallMs: 30_000 }) const result = await runtime.run({ program: [ 'import os, time', 'frame = b\'{"type":"call","id":%d,"global":"tools","name":"hang","args":{}}\\n\'', 'payload = b"".join(frame % i for i in range(1025))', 'view = memoryview(payload)', 'while view:', ' view = view[os.write(3, view):]', 'time.sleep(30)', 'return "unreachable"', ].join('\n'), bindings: [{ global: 'tools', functions: { hang: async () => await new Promise(() => {}) } }], }) expect(result.error?.kind).toBe('worker-exit') expect(result.error?.message).toContain('call backlog exceeded') }, 30_000) it('runs a burst of 1300 instant calls whose frames split across pipe reads', async () => { // Flowing mode can fire several 'data' events within one macrotask, before // any microtask drains, so a per-event snapshot of the outstanding count // could see the first chunk's in-flight calls in the second chunk's check // and false-positive on a legitimate burst. The post-macrotask check always // sees the true count (all finallys have run), so this burst of compact // frames — sized so the pipe read splits it — completes with all results. const { runtime } = await setup({ maxWallMs: 30_000 }) const result = await runtime.run({ program: [ 'import asyncio', 'return len(await asyncio.gather(*[t.e(i) for i in range(1300)]))', ].join('\n'), bindings: [{ global: 't', functions: { e: async (args: unknown) => args as CodeJsonValue } }], }) expect(result.error).toBeUndefined() expect(result.value).toBe(1300) }, 30_000) it('settles as worker-exit when a done frame lands in the same batch as a call flood', async () => { // A done frame processed in the SAME data event as more than 1024 call // frames settles the run before the post-macrotask check runs (which no-ops // once settled), so a child could finish "successfully" while leaving the // outstanding closures behind — one sub-64 KiB write carries 1025 compact // calls plus a done. The done handler re-checks the count before accepting // the frame, so the run settles as worker-exit with the call-backlog // message instead. const { runtime } = await setup({ maxWallMs: 30_000 }) const result = await runtime.run({ program: [ 'import os, time', 'frame = b\'{"type":"call","id":%d,"global":"tools","name":"hang","args":{}}\\n\'', 'payload = b"".join(frame % i for i in range(1025)) + b\'{"type":"done","value":1}\\n\'', 'view = memoryview(payload)', 'while view:', ' view = view[os.write(3, view):]', 'time.sleep(30)', 'return "unreachable"', ].join('\n'), bindings: [{ global: 'tools', functions: { hang: async () => await new Promise(() => {}) } }], }) expect(result.error?.kind).toBe('worker-exit') expect(result.error?.message).toContain('call backlog exceeded') }, 30_000) it('rejects a completion whose dict keys fold to one JSON member', async () => { // `_dump_string` folds a spelled-out surrogate pair into its astral code // point, so `"\ud83d\ude00"` and `"\U0001f600"` are DIFFERENT Python keys // that encode to the SAME JSON member — the host's JSON.parse would // silently drop one of them, violating the lossless-JSON completion // contract. The child's meter rejects the collision before encoding. const { runtime } = await setup() const result = await runtime.run({ program: 'return {"\\ud83d\\ude00": 1, "\\U0001f600": 2}', bindings: [], }) expect(result.error?.kind).toBe('invalid-output') expect(result.error?.message).toContain('duplicate dict key') }, 30_000) it('rejects binding arguments whose dict keys fold to one JSON member', async () => { // The same collision on the binding-argument path: the call is rejected as // not lossless JSON, so the program's `await` raises and the program // surfaces the rejection message. const { runtime } = await setup() const result = await runtime.run({ program: [ 'try:', ' await tools.echo({"\\ud83d\\ude00": 1, "\\U0001f600": 2})', ' return "no-error"', 'except Exception as e:', ' return str(e)', ].join('\n'), bindings: [{ global: 'tools', functions: { echo: async (args: unknown) => args as CodeJsonValue } }], }) expect(result.error).toBeUndefined() expect(result.value).toContain('duplicate dict key') }, 30_000) it('compacts the reply queue mid-drain without dropping pending frames', async () => { // A reply larger than the writable high-water mark makes the FIRST write // return false, suspending the drain loop; the frames queued behind it // push the drain's consumed head past MAX_PENDING_REPLIES, so the resumed // drain compacts the queue mid-run. The child reads fd 3 itself (blocking // the asyncio pump, so its reads cannot race the host's pushes) and sends // a second wave of calls AFTER reading part of the first wave's replies — // those replies are still pending when the drain's head crosses the // compaction bound, so a compaction that dropped pending frames would // leave the child's reply count short and the read loop spinning to the // wall clock. No fixed sleep: the child's reads pace at the drain's // delivery rate (each write blocks until the child reads), and the host // finishes pushing all of a wave within milliseconds — orders of magnitude // before the head crosses the bound — so the queue is always full at the // splice. Newlines are counted per chunk (each reply carries exactly one), // never by re-scanning the accumulated total, which would be O(n²). const { runtime } = await setup({ maxWallMs: 60_000 }) const result = await runtime.run({ program: [ 'import os', 'frame = b\'{"type":"call","id":%d,"global":"tools","name":"big","args":{}}\\n\'', 'for i in range(1024):', ' view = memoryview(frame % i)', ' while view:', ' view = view[os.write(3, view):]', 'seen = 0', 'while seen < 500:', ' chunk = os.read(3, 65536)', ' if not chunk:', ' break', ' seen += chunk.count(b"\\n")', 'for i in range(500):', ' view = memoryview(frame % (1024 + i))', ' while view:', ' view = view[os.write(3, view):]', 'while seen < 1524:', ' chunk = os.read(3, 65536)', ' if not chunk:', ' break', ' seen += chunk.count(b"\\n")', 'return "done"', ].join('\n'), bindings: [{ global: 'tools', functions: { big: async () => 'x'.repeat(65 * 1024) } }], }) expect(result.error).toBeUndefined() expect(result.value).toBe('done') }, 60_000) it('bounds a flood of zero-byte log lines through the per-entry separator charge', async () => { // Blank print() lines carry zero content bytes; without the +1 separator // charge they would bypass maxLogBytes entirely and grow the retained // array without bound. Each empty entry costs one byte, so a 64-byte // budget retains at most 64 entries before the marker. const { runtime } = await setup({ maxLogBytes: 64, maxWallMs: 10_000 }) const result = await runtime.run({ program: [ 'for _ in range(10000):', ' print()', 'return "done"', ].join('\n'), bindings: [], }) expect(result.error).toBeUndefined() expect(result.logs.length).toBeLessThanOrEqual(65) expect(result.logs.some(line => line.includes('log capture truncated'))).toBe(true) }) it('reassembles multibyte UTF-8 split across stray-output pipe chunks', async () => { // A single os.write far past the 64 KiB pipe buffer forces multiple // 'data' chunks; when the boundary lands inside a multibyte sequence, // per-chunk decoding would corrupt it into replacement characters. Raw bytes // are buffered and only decoded once a complete line (or the whole tail at // flush) is assembled, so the split sequence is whole by the time it is // decoded. The payload spans every valid multibyte lead class so // accrueStrayCost's per-lead continuation ranges are all exercised: U+0900 // (E0 A4 80, the range-restricted E0 lead), U+4F60 and U+597D (E4/E5, plain // 3-byte), U+1F600 (F0, the range-restricted F0 lead), and U+10FFFF (F4 8F // BF BF, the range-restricted F4 lead). const { runtime } = await setup({ maxLogBytes: 1024 * 1024 }) const result = await runtime.run({ program: [ 'import os', // os.write is one syscall and returns a partial count on a full // pipe, so loop until the whole payload (odd prefix -> a chunk // boundary lands inside a multibyte sequence) is out. String.raw`payload = b"a" * 65535 + "\u0900\u4f60\u597d\U0001f600\U0010ffff".encode("utf-8")`, 'view = memoryview(payload)', 'while view:', ' view = view[os.write(1, view):]', 'return "done"', ].join('\n'), bindings: [], }) expect(result.error).toBeUndefined() const text = result.logs.join('') expect(text).toContain('\u0900\u4f60\u597d\u{1f600}\u{10ffff}') expect(text).not.toContain('\ufffd') }) it('flushes a stray-output byte sequence left incomplete when the pipe ends', async () => { // The child writes the first two bytes of a 3-byte UTF-8 character to fd 1 // and exits, so the pipe closes with the sequence unfinished in the raw // residual. The 'end' flush decodes the residual with `toString('utf8')`, // which renders the stranded bytes as U+FFFD instead of dropping them. const { runtime } = await setup({ maxLogBytes: 1024 * 1024 }) const result = await runtime.run({ program: [ 'import os', // b"\xe4\xbd" is the leading two bytes of U+4F60; no continuation byte // follows before exit. String.raw`os.write(1, b"\xe4\xbd")`, 'return "done"', ].join('\n'), bindings: [], }) expect(result.error).toBeUndefined() expect(result.logs.join('')).toContain('�') }) it('rejects reserved words of EITHER backend language as binding globals', async () => { // The seam's portable contract: `lambda` (Python keyword, legal JS name) // and `typeof` (JS keyword, legal Python name) are both refused, so a // namespace list valid on one backend is valid on every backend. const { runtime } = await setup() for (const global of ['lambda', 'typeof']) { await expect(runtime.run({ program: 'return 1', bindings: [{ global, functions: {} }], })).rejects.toThrow(/is not a usable Python identifier/) } }) it('captures stray stdout bytes the child writes bypassing sys.stdout', async () => { // Model code that writes to fd 1 via os.write() bypasses the Python-side // LogBuffer, so the host's stray-byte capture on child.stdout is what // records it. const { runtime } = await setup() const result = await runtime.run({ program: [ 'import os', 'os.write(1, b"stray stdout\\n")', 'os.write(2, b"stray stderr\\n")', 'return "done"', ].join('\n'), bindings: [], }) expect(result.error).toBeUndefined() expect(result.logs.join('')).toContain('stray stdout') expect(result.logs.join('')).toContain('stray stderr') }) it('flushes bytes written through sys.__stdout__/sys.__stderr__ before the done frame', async () => { // The bootstrap only replaces sys.stdout/sys.stderr with the _LogStream; // sys.__stdout__/sys.__stderr__ are the original block-buffered wrappers // over fd 1/2. A program that writes through them without an explicit flush // would lose those bytes when the host SIGTERMs the child right after the // done frame (the default SIGTERM disposition terminates without // interpreter finalization). The settlement flush now drains the original // std streams before sending the done frame, so the bytes land in the // kernel pipe buffer and the host's stray capture records them. const { runtime } = await setup() const result = await runtime.run({ program: [ 'import sys', // `-u` makes the streams write-through; re-enable block buffering so // the bytes sit in the wrapper until the SETTLEMENT drain flushes them // — the drain path, not the -u immediate write, is what this case pins. 'if hasattr(sys.__stdout__, "reconfigure"):', ' sys.__stdout__.reconfigure(write_through=False)', ' sys.__stderr__.reconfigure(write_through=False)', 'sys.__stdout__.write("orig stdout\\n")', 'sys.__stderr__.write("orig stderr\\n")', 'return "done"', ].join('\n'), bindings: [], }) expect(result.error).toBeUndefined() expect(result.value).toBe('done') expect(result.logs.join('')).toContain('orig stdout') expect(result.logs.join('')).toContain('orig stderr') }, 15_000) it('escalates to SIGKILL when the program traps SIGTERM and ignores the grace period', async () => { // A program that traps SIGTERM should still die: the kill() escalation // fires SIGKILL after graceMs. The full run reports either timeout (wall) // or worker-exit depending on which finish reason wins the race. const { runtime } = await setup({ maxWallMs: 400, graceMs: 200 }) const result = await runtime.run({ program: [ 'import signal, time', 'signal.signal(signal.SIGTERM, lambda *a: None)', 'while True: time.sleep(1)', ].join('\n'), bindings: [], }) expect(['timeout', 'worker-exit']).toContain(result.error?.kind) }, 6000) it('bounds the fd-3 receive buffer against a newline-free flood', async () => { // A program looping os.write(3, ...) with no newline would grow the host // accumulator unbounded (the child's RLIMIT_AS does not cover the host // string). The frame cap is a fixed 64 MiB memory-safety invariant — // deliberately NOT derived from maxValueBytes, because legitimate binding // call frames may be large. We flood slightly past it in 8 MiB writes so // the test terminates promptly once the guard trips. const ceiling = 64 * 1024 * 1024 const { runtime } = await setup({ maxWallMs: 60_000, addressSpaceMb: 2048 }) const start = Date.now() const result = await runtime.run({ program: [ 'import os', `for _ in range(${Math.ceil((ceiling * 1.1) / (8 * 1024 * 1024))}):`, ' os.write(3, b"A" * (8 * 1024 * 1024))', 'return "never"', ].join('\n'), bindings: [], }) const elapsed = Date.now() - start expect(result.error?.kind).toBe('worker-exit') expect(result.error?.message).toContain(`protocol frame exceeded ${ceiling} bytes`) // The breach ends the run before the wall ceiling (the run did not idle // out); absolute pipe throughput varies too much under parallel suites // for a tight bound. expect(elapsed).toBeLessThan(30_000) }, 45_000) it('fails a forged oversized done value host-side as output-limit', async () => { // The Python-side _done_with_value check is bypassable by writing a done // frame straight to fd 3. The host re-enforces maxValueBytes; the seam // forbids substituting a truncated value, so the run FAILS as output-limit // instead of returning a lie. const maxValueBytes = 64 const { runtime } = await setup({ maxValueBytes }) const result = await runtime.run({ program: [ 'import os, json', 'big = "B" * 5000', 'os.write(3, json.dumps({"type":"done","value":big}).encode() + b"\\n")', // The real done never sends; the forged one settles the run. 'import time', 'time.sleep(5)', ].join('\n'), bindings: [], }) expect(result.value).toBeUndefined() expect(result.error?.kind).toBe('output-limit') expect(result.error?.message).toContain('exceeded 64 bytes') }, 8000) it('drops a forged oversized log frame on its code-unit lower bound, before escaping it', async () => { // A forged `log` frame carrying a control-heavy string: NULs escape // several-fold (one NUL -> six bytes `\u0000`). The raw frame stays under // the host's 64 MiB parse cap (4 MiB of `\u0000` text = 24 MiB raw) while // the escaped form would be ~24 MiB. Charging it required building that // escaped copy first, so a 32-byte maxLogBytes could still force a large // host allocation. The cheap `length + 3` lower bound truncates it instead. // The host's own heap is what is under test, so keep the child's address // space generous enough to BUILD the frame. const { runtime } = await setup({ maxLogBytes: 128, addressSpaceMb: 1024, maxWallMs: 60_000 }) const before = process.memoryUsage().heapUsed const result = await runtime.run({ program: [ 'import os', // Written as a raw frame so the child's own ledger never sees it. 'os.write(3, b\'{"type":"log","text":"\' + b"\\\\u0000" * (4 * 1024 * 1024) + b\'"}\\n\')', 'return "settled"', ].join('\n'), bindings: [], }) expect(result.error).toBeUndefined() expect(result.value).toBe('settled') // The frame was dropped as one truncation marker, not retained. expect(result.logs).toEqual([logTruncationMarker(128)]) // The escaped copy (~144 MiB) was never materialized. expect(process.memoryUsage().heapUsed - before).toBeLessThan(256 * 1024 * 1024) }, 90_000) it('charges a forged log frame its escaped cost once past the code-unit lower bound', async () => { // The cheap lower bound only rejects what cannot possibly fit; a SHORT // control-heavy frame clears it and must still be charged what it costs on // the wire. Eleven NULs are 14 against the 64-byte ledger's cheap bound // (six bytes each, two quotes, one separator), so the full charge truncates. const { runtime } = await setup({ maxLogBytes: 64 }) const result = await runtime.run({ program: [ 'import os', 'os.write(3, b\'{"type":"log","text":"\' + b"\\\\u0000" * 11 + b\'"}\\n\')', 'return "settled"', ].join('\n'), bindings: [], }) expect(result.error).toBeUndefined() expect(result.value).toBe('settled') expect(result.logs).toEqual([logTruncationMarker(64)]) }, 8000) it('caps a forged done error.message from its code-unit prefix, never encoding the whole message', async () => { // `Buffer.from(message)` on a message near the frame ceiling allocates a // full UTF-8 copy before maxValueBytes applies. Only the first // maxValueBytes code units can fit the cap, so only that prefix is encoded // — at most 3x the cap in bytes. The message here is 48 MiB of ASCII: its // full encode would be another 48 MiB in the host. const maxValueBytes = 64 const { runtime } = await setup({ maxValueBytes, addressSpaceMb: 1024, maxWallMs: 60_000 }) const before = process.memoryUsage().heapUsed const result = await runtime.run({ program: [ 'import os', 'os.write(3, b\'{"type":"done","error":{"kind":"exception","message":"\' + b"E" * (48 * 1024 * 1024) + b\'"}}\\n\')', 'import time', 'time.sleep(30)', ].join('\n'), bindings: [], }) expect(result.error?.kind).toBe('exception') const message = result.error?.message ?? '' // The marker's 15 bytes come OUT of the 64-byte cap, so 49 E's precede it // and the whole string is exactly 64 bytes — not 64 plus the marker. expect(message).toBe(`${'E'.repeat(maxValueBytes - 15)}… [truncated]`) expect(Buffer.byteLength(message, 'utf8')).toBe(maxValueBytes) // JSON.parse already holds the 48 MiB string; the cap must not add a // second full-length copy on top of it. expect(process.memoryUsage().heapUsed - before).toBeLessThan(256 * 1024 * 1024) }, 90_000) it('keeps a capped diagnostic within maxValueBytes, marker included', async () => { // The marker is part of the emitted diagnostic, so its bytes are reserved // from the cap rather than appended past it — the host meters this same // field downstream. Checked on BOTH producers: the child's own _cap_message // (a raised exception) and the host's capMessage (a forged done frame). const maxValueBytes = 40 const { runtime } = await setup({ maxValueBytes }) const raised = await runtime.run({ program: 'raise ValueError("R" * 100000)', bindings: [], }) expect(raised.error?.kind).toBe('exception') const raisedMessage = raised.error?.message ?? '' expect(raisedMessage.endsWith('… [truncated]')).toBe(true) expect(Buffer.byteLength(raisedMessage, 'utf8')).toBeLessThanOrEqual(maxValueBytes) const forged = await runtime.run({ program: [ 'import os, json', 'msg = "F" * 100000', 'os.write(3, json.dumps({"type":"done","error":{"kind":"exception","message":msg}}).encode() + b"\\n")', 'import time', 'time.sleep(5)', ].join('\n'), bindings: [], }) expect(forged.error?.kind).toBe('exception') const forgedMessage = forged.error?.message ?? '' expect(forgedMessage.endsWith('… [truncated]')).toBe(true) expect(Buffer.byteLength(forgedMessage, 'utf8')).toBe(maxValueBytes) }, 15_000) it('emits the marker alone when the cap is smaller than the marker itself', async () => { // With maxValueBytes below the marker's own 15 bytes there is no room for // message text; the marker still goes out, so the truncation stays reported // instead of the diagnostic silently becoming empty. Both producers agree. const { runtime } = await setup({ maxValueBytes: 4 }) const raised = await runtime.run({ program: 'raise ValueError("R" * 500)', bindings: [] }) expect(raised.error?.kind).toBe('exception') expect(raised.error?.message).toBe('… [truncated]') const forged = await runtime.run({ program: [ 'import os, json', 'os.write(3, json.dumps({"type":"done","error":{"kind":"exception","message":"F" * 500}}).encode() + b"\\n")', 'import time', 'time.sleep(5)', ].join('\n'), bindings: [], }) expect(forged.error?.kind).toBe('exception') expect(forged.error?.message).toBe('… [truncated]') }, 15_000) it('caps a forged done error.message without splitting a surrogate pair', async () => { // At exactly maxValueBytes code units the prefix can end on a high // surrogate whose low half sits just outside it. `Buffer.from` encodes that // orphan as U+FFFD — the same corruption a mid-sequence byte cut causes — // and those three replacement bytes sit past the marker-reserved budget, so // the byte trim-back drops them. const maxValueBytes = 32 const { runtime } = await setup({ maxValueBytes }) const result = await runtime.run({ program: [ 'import os, json', // 32 ASCII chars then astral characters: code unit 32 is the first // character's high surrogate (Python spells it as one code point, so // json.dumps emits the raw 4 bytes the host reads back as a pair). 'msg = "A" * 32 + "\\U0001f600" * 4', 'os.write(3, json.dumps({"type":"done","error":{"kind":"exception","message":msg}}).encode() + b"\\n")', 'import time', 'time.sleep(5)', ].join('\n'), bindings: [], }) expect(result.error?.kind).toBe('exception') // 17 A's fill the marker-reserved budget; no orphaned half, no U+FFFD. expect(result.error?.message).toBe(`${'A'.repeat(17)}… [truncated]`) expect(Buffer.byteLength(result.error?.message ?? '', 'utf8')).toBe(maxValueBytes) }, 8000) it('returns a diagnostic under a third of the cap untouched, skipping the encode', async () => { // Under maxValueBytes/3 code units a message cannot overflow the cap // whatever it holds (3 bytes is the per-code-unit maximum), so the fast // path returns it without encoding anything. Non-ASCII proves the bound is // the code-unit count, not a byte assumption: 6 characters at 3 bytes each // is 18 bytes, inside the 64-byte cap. const { runtime } = await setup({ maxValueBytes: 64 }) const result = await runtime.run({ program: [ 'import os, json', 'os.write(3, json.dumps({"type":"done","error":{"kind":"exception","message":"中文中文中文"}}).encode() + b"\\n")', 'import time', 'time.sleep(5)', ].join('\n'), bindings: [], }) expect(result.error?.kind).toBe('exception') expect(result.error?.message).toBe('中文中文中文') }, 8000) it('re-caps a forged done error.message host-side on a UTF-8 boundary', async () => { // A forged done frame can carry an arbitrarily long error message; the // host caps it to maxValueBytes and appends the shared marker. The // message is emoji-dense and the cap is chosen so the marker-reserved // 51-byte cut lands INSIDE a 4-byte sequence (one ASCII byte then 4-byte // runs, so only a cut at 1 + 4k is aligned) — the cap must trim back to a // code-point boundary rather than decode a replacement character, which // would also exceed the cap. const maxValueBytes = 66 const { runtime } = await setup({ maxValueBytes }) const result = await runtime.run({ program: [ 'import os, json', 'msg = "E" + "\\U0001f600" * 2000', 'os.write(3, json.dumps({"type":"done","error":{"kind":"exception","message":msg}}).encode() + b"\\n")', 'import time', 'time.sleep(5)', ].join('\n'), bindings: [], }) expect(result.error?.kind).toBe('exception') const message = result.error?.message ?? '' expect(message.endsWith('… [truncated]')).toBe(true) const marker = '… [truncated]' const body = message.slice(0, message.length - marker.length) // The WHOLE message, marker included, honors the cap. expect(Buffer.byteLength(message, 'utf8')).toBeLessThanOrEqual(maxValueBytes) // 'E' plus 12 emoji is 49 bytes: the trim-back walked the 51-byte budget // down past two continuation bytes rather than splitting the 13th. expect(body).toBe(`E${'\u{1f600}'.repeat(12)}`) // The cut landed on a code-point boundary — no replacement character. expect(body).not.toContain('\ufffd') }, 8000) it('bounds a single oversized newline-terminated line on fd 3', async () => { // The same cap applies to one giant framed line. Write EXACTLY the // cap with no newline — at the limit, not past it, so nothing trips — // then a small newline tail, which is the chunk that crosses. const ceiling = 64 * 1024 * 1024 const { runtime } = await setup({ maxWallMs: 60_000, addressSpaceMb: 2048 }) const result = await runtime.run({ program: [ 'import os', 'chunk = b"A" * (8 * 1024 * 1024)', `for _ in range(${ceiling / (8 * 1024 * 1024)}):`, ' os.write(3, chunk)', 'os.write(3, b"AAAA\\n")', 'return "never"', ].join('\n'), bindings: [], }) expect(result.error?.kind).toBe('worker-exit') expect(result.error?.message).toContain(`protocol frame exceeded ${ceiling} bytes`) }, 90_000) it('rejects an over-cap newline-free fd-3 buffer without first joining it into one line', async () => { // The cap has to be enforced on the byte COUNTER before Buffer.concat, // not on the joined line afterwards: the join is a second copy of // everything held, so a program could force roughly twice the advertised // 64 MiB of host memory before anything rejected it. // // This program writes past the cap with no newline: the counter crosses on // the 9th 8 MiB write (72 MiB) while the buffer is still a single unframed // line, so the pre-join check rejects it without concat-ing a second copy. // Checking the joined line instead would have produced a 72 MiB FIRST LINE // that the per-line bound then dropped only after the doubling had happened. const ceiling = 64 * 1024 * 1024 const { runtime } = await setup({ maxWallMs: 60_000, addressSpaceMb: 2048 }) const result = await runtime.run({ program: [ 'import os', 'chunk = b"A" * (8 * 1024 * 1024)', `for _ in range(${ceiling / (8 * 1024 * 1024) + 1}):`, ' os.write(3, chunk)', 'return "never"', ].join('\n'), bindings: [], }) expect(result.value).toBeUndefined() expect(result.error?.kind).toBe('worker-exit') expect(result.error?.message).toContain(`protocol frame exceeded ${ceiling} bytes`) }, 120_000) it('keeps two within-cap frames whose combined buffer crosses the cap', async () => { // The unframed byte counter charges the WHOLE buffer, which legitimately // holds several frames each within FRAME_PARSE_CAP_BYTES. A first frame of // exactly the cap followed by a second frame crosses the counter without // either frame exceeding the cap; the first-frame check (not the counter) // must let them through, or a legitimate near-cap frame plus a trailing // frame would be misreported as a worker-exit. const { runtime } = await setup({ maxWallMs: 60_000, addressSpaceMb: 2048 }) const result = await runtime.run({ program: [ 'import os', 'chunk = b"A" * (8 * 1024 * 1024)', // Exactly the cap, no newline — at the limit, so nothing trips. 'for _ in range(8):', ' os.write(3, chunk)', // A newline, then a small legitimate log frame. 'os.write(3, b"\\n{\\"type\\":\\"log\\",\\"text\\":\\"after-cap-frames\\"}\\n")', 'return "done"', ].join('\n'), bindings: [], }) expect(result.error).toBeUndefined() expect(result.value).toBe('done') expect(result.logs).toContain('after-cap-frames') }, 120_000) it('rejects an oversized first frame that lands on the sealing threshold with a newline', async () => { // The fragment-count seal runs only on newline-free chunks (the ELSE half // of the newline branch), so a chunk that carries the first newline always // reaches the join and its first-frame check; sealing it into a block // would empty pendingChunks, leave sawNewline false, and skip that check. // Whether the pipe delivers exactly 1024 chunks is timing-dependent, but // the oversized first frame (63.9 MiB of A's + 12289 more before the // newline) exceeds FRAME_PARSE_CAP_BYTES no matter how it arrives — the // case pins the worker-exit settlement, not a pre/post copy-count // distinction (both orders reject an over-cap frame). const { runtime } = await setup({ maxWallMs: 60_000, addressSpaceMb: 2048 }) const result = await runtime.run({ program: [ 'import os', // 4 KiB writes are <= PIPE_BUF, so each os.write is atomic and the // host sees one chunk per write; 16384 of them accumulate 64 MiB of // newline-free bytes (16 fragment-count seals of 1024 chunks). 'chunk = b"A" * 4096', 'for _ in range(16384):', ' os.write(3, chunk)', // 12289 more A's push the first frame past 64 MiB; drain-loop so the // write cannot truncate, then a newline and a small legitimate frame. "data = b'A' * 12289 + b'\\n' + b'{\"type\":\"log\",\"text\":\"after-seal\"}\\n'", 'view = memoryview(data)', 'while view:', ' view = view[os.write(3, view):]', 'return "done"', ].join('\n'), bindings: [], }) expect(result.error?.kind).toBe('worker-exit') expect(result.error?.message).toContain('protocol frame exceeded') }, 120_000) })