Files
msd-core/tests/execute-phase-decimal-arithmetic.test.cjs
Tom Boucher 740ba0d8a3 fix(#4628): expose DAG-ready plans and restrict dispatch to them (#4781)
Emitted-Drift-Ack-Growth: execute-phase.md — #4628 consumer wiring: ready_plans parse pointer, not-ready named skip, and waiting condition 2b reference to the ready-wave-gate step file

Co-authored-by: sim <sim@local>
2026-09-16 02:38:43 -04:00

163 lines
7.6 KiB
JavaScript

'use strict';
/**
* #4619 — execute-phase's `$((10#{phase_number}))` shell arithmetic is a hard
* syntax error when `{phase_number}` is decimal (inserted phase, e.g. `01.1`) or
* N-segment (e.g. `23.1.2`): `$((10#01.1))` aborts the whole script in a
* non-interactive shell, both in bash and zsh. The fix zero-strips only the
* LEADING integer segment via parameter expansion and keeps the remainder as an
* escaped-dot string for the downstream anchored ERE — never touching real
* shell arithmetic on a non-integer value.
*
* These tests are BEHAVIORAL: they execute the actual fixed snippet (and, for
* the regression control, the actual OLD broken snippet) via a real bash
* subprocess, asserting on literal stdout/exit-code — not just string-matching
* the source. A companion sourcetext check (mirroring the established pattern
* in tests/safe-resume-gate-anchoring.test.cjs) proves each of the 4 real
* production sites still carries a byte-identical copy of the fixed logic
* (under each site's own variable-name spelling), so a future accidental
* revert of any ONE site is caught.
*/
const { test, describe } = require('node:test');
const assert = require('node:assert/strict');
const fs = require('node:fs');
const path = require('node:path');
const { execFileSync } = require('node:child_process');
const EXECUTE_PHASE = path.join(__dirname, '..', 'gsd-core', 'workflows', 'execute-phase.md');
const COMPLETION_RECONCILIATION = path.join(__dirname, '..', 'gsd-core', 'workflows',
'execute-phase', 'steps', 'completion-reconciliation.md');
const TDD_REF = path.join(__dirname, '..', 'gsd-core', 'references', 'tdd.md');
const TIMEOUT = 5000;
// The fixed transformation, parameterized by (source variable, target prefix) — this
// is a byte-for-byte copy of what ships at all 4 sites:
// site 1/2 (execute-phase.md): source PHASE_NUMBER, prefix PHASE
// site 3 (completion-reconciliation.md): source SPOT_PHASE_NUMBER, prefix SPOT_PHASE
// site 4 (tdd.md): source PHASE, prefix PHASE
function fixedSnippet(sourceVar, prefix, indent = '') {
return `${indent}${prefix}_INT=\${${sourceVar}%%.*}; ${prefix}_FRAC=\${${sourceVar}#"$${prefix}_INT"}\n` +
`${indent}${prefix}_N="$((10#$${prefix}_INT))\${${prefix}_FRAC//./\\\\.}"`;
}
function runFixed(phaseNumberValue) {
const script = `PHASE_NUMBER="${phaseNumberValue}"\n${fixedSnippet('PHASE_NUMBER', 'PHASE')}\necho "$PHASE_N"`;
return execFileSync('bash', [], { input: script, encoding: 'utf8', timeout: TIMEOUT }).trim();
}
describe('#4619 — execute-phase decimal/N-segment phase-number arithmetic', () => {
test('fixed snippet zero-strips the leading integer segment for a decimal phase (01.1 -> 1\\.1)', () => {
assert.equal(runFixed('01.1'), '1\\.1');
});
test('fixed snippet zero-strips the leading integer segment for an N-segment phase (23.1.2 -> 23\\.1\\.2)', () => {
assert.equal(runFixed('23.1.2'), '23\\.1\\.2');
});
test('regression control: a plain unpadded phase number is unchanged (12 -> 12)', () => {
assert.equal(runFixed('12'), '12');
});
test('regression control: a padded plain phase number is still zero-stripped (01 -> 1)', () => {
assert.equal(runFixed('01'), '1');
});
test('failing-first: the OLD $((10#...)) form is a hard shell syntax error on a decimal phase number', () => {
assert.throws(() => {
execFileSync('bash', ['-c', 'echo $((10#01.1))'], { encoding: 'utf8', timeout: TIMEOUT });
}, /syntax error|status/);
});
test('the NEW form succeeds on the exact same input that hard-errors the OLD form', () => {
assert.doesNotThrow(() => runFixed('01.1'));
});
test('the resulting anchored ERE matches decimal commit scopes and rejects near-miss scopes', () => {
const phaseN = runFixed('01.1'); // '1\.1'
const planN = '3';
const re = `^[a-z]+\\((0*${phaseN})-(0*${planN})\\):`;
const cases = [
['feat(01.1-03):', true],
['test(1.1-3):', true],
['feat(01-03):', false],
['feat(01.2-03):', false],
['feat(011-03):', false],
['feat(12-03):', false],
];
for (const [subject, expected] of cases) {
const script = `echo ${JSON.stringify(subject)} | grep -qE ${JSON.stringify(re)}`;
let matched;
try {
execFileSync('bash', [], { input: script, encoding: 'utf8', timeout: TIMEOUT });
matched = true;
} catch {
matched = false;
}
assert.equal(matched, expected, `expected ${subject} match=${expected} against ${re}`);
}
});
test('the resulting anchored ERE matches a plain padded-integer phase and rejects near-miss scopes', () => {
const phaseN = runFixed('01'); // '1'
const planN = '3';
const re = `^[a-z]+\\((0*${phaseN})-(0*${planN})\\):`;
const cases = [
['feat(01-03):', true],
['feat(01.1-03):', false],
['feat(011-03):', false],
['feat(12-03):', false],
];
for (const [subject, expected] of cases) {
const script = `echo ${JSON.stringify(subject)} | grep -qE ${JSON.stringify(re)}`;
let matched;
try {
execFileSync('bash', [], { input: script, encoding: 'utf8', timeout: TIMEOUT });
matched = true;
} catch {
matched = false;
}
assert.equal(matched, expected, `expected ${subject} match=${expected} against ${re}`);
}
});
describe('source parity — each of the 4 production sites carries the fixed logic', () => {
test('execute-phase.md safe_resume_gate carries the fixed PHASE_NUMBER/PHASE_INT/PHASE_FRAC/PHASE_N logic', () => {
const w = fs.readFileSync(EXECUTE_PHASE, 'utf8');
assert.ok(w.includes(fixedSnippet('PHASE_NUMBER', 'PHASE')),
'safe_resume_gate must carry the byte-identical fixed decimal-tolerant snippet');
});
test('execute-phase.md TDD gate carries the fixed PHASE_NUMBER/PHASE_INT/PHASE_FRAC/PHASE_N logic', () => {
const w = fs.readFileSync(EXECUTE_PHASE, 'utf8');
// The TDD gate block is nested one level deeper (4-space indent) than
// safe_resume_gate's top-level snippet.
assert.ok(w.includes(fixedSnippet('PHASE_NUMBER', 'PHASE', ' ')),
'the TDD gate must carry the byte-identical fixed decimal-tolerant snippet (indented)');
});
test('completion-reconciliation.md carries the fixed SPOT_-prefixed logic', () => {
const frag = fs.readFileSync(COMPLETION_RECONCILIATION, 'utf8');
assert.ok(frag.includes(fixedSnippet('SPOT_PHASE_NUMBER', 'SPOT_PHASE')),
'completion-reconciliation spot-check must carry the byte-identical fixed SPOT_-prefixed snippet');
});
test('tdd.md carries the fixed bare PHASE/PLAN logic', () => {
const ref = fs.readFileSync(TDD_REF, 'utf8');
assert.ok(ref.includes(fixedSnippet('PHASE', 'PHASE')),
'tdd.md gate-enforcement example must carry the byte-identical fixed bare-PHASE snippet');
});
test('none of the 4 sites still contains the old unconditional $((10#...)) form on a template/variable phase number', () => {
const w = fs.readFileSync(EXECUTE_PHASE, 'utf8');
const frag = fs.readFileSync(COMPLETION_RECONCILIATION, 'utf8');
const ref = fs.readFileSync(TDD_REF, 'utf8');
assert.ok(!w.includes('PHASE_N=$((10#{phase_number}))'), 'old broken form must not remain in execute-phase.md (site 1)');
assert.ok(!w.includes('PHASE_N=$((10#${PHASE_NUMBER}))'), 'old broken form must not remain in execute-phase.md (site 2)');
assert.ok(!frag.includes('SPOT_PHASE_N=$((10#{phase_number}))'), 'old broken form must not remain in completion-reconciliation.md (site 3)');
assert.ok(!ref.includes('PHASE_N=$((10#${PHASE}))'), 'old broken form must not remain in tdd.md (site 4)');
});
});
});