New AKSL_COVERAGE option instruments the library and its tests with --coverage -O0 and wires the report into the suite itself, so a plain ctest --test-dir build-coverage both runs the tests and produces coverage. Two CTest entries do the work, held in order by a CTest fixture rather than by declaration order so they also hold under ctest -j: coverage_reset (FIXTURES_SETUP) clears the .gcda counters before any test, since gcov counts are cumulative and would otherwise fold in earlier runs; coverage_report (FIXTURES_CLEANUP) aggregates gcov output afterwards. AKSL_COVERAGE_THRESHOLD / AKSL_COVERAGE_BRANCH_THRESHOLD gate the report, the same regression-ratchet idea as the mutation score. The `coverage` target builds, runs and prints in one step. scripts/coverage.py parses gcov's JSON output, aggregates line, branch and function counts across translation units, and lists every uncovered line and never-called function -- the actionable half, as with surviving mutants. Python stdlib plus gcc's own gcov only: no lcov, gcovr or genhtml. It also writes coverage-summary.txt (CTest hides the output of a passing test) and a Cobertura coverage.xml for CI publishers. Instrumentation is per target, so deps/libakerror stays out of the report. The mutation harness now ignores build*/ and gcov artifacts when copying the tree, so a coverage build does not slow it down. Baseline on src/stdlib.c: 52.0% of lines, 23.6% of branches, 8 of 21 functions. The uncovered functions are the untested wrappers the mutation survivors already point at (printf, ato*, stream, realpath, strhash). Verified: cmake -S . -B build-coverage -DAKSL_COVERAGE=ON cmake --build build-coverage --target coverage # 8/8, report printed ctest --test-dir build-coverage -j8 # fixture order holds cmake -S . -B build-coverage -DAKSL_COVERAGE=ON -DAKSL_COVERAGE_THRESHOLD=60 ctest --test-dir build-coverage --output-on-failure # gate fails as expected ctest --test-dir build --output-on-failure # 6/6, no .gcda emitted ctest --test-dir build-asan --output-on-failure # 6/6 scripts/mutation_test.py --target src/stdlib.c --list # 173 mutants, unchanged Totals match gcov itself: 51.98% of 202 lines, 23.60% of 661 branches. Co-Authored-By: Claude Opus 5 (1M context) <noreply@anthropic.com> Co-Authored-By: Andrew Kesterson <andrew@aklabs.net>
192 lines
7.8 KiB
Markdown
192 lines
7.8 KiB
Markdown
# README
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`libakstdlib` wraps C standard library functions so that they report failures
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through [libakerror](https://source.starfort.tech/andrew/libakerror)'s
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`ATTEMPT { ... } HANDLE { ... }` error contexts instead of through return codes
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and `errno`. It also provides a few data structures built on the same
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convention (a doubly-linked list and a binary tree).
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Every entry point returns `akerr_ErrorContext *` and is marked `AKERR_NOIGNORE`.
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See `TODO.md` for the current state of the library: what is covered by tests,
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which corner cases are still open, and which libc functions are not yet wrapped.
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## Building
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```sh
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git submodule update --init --recursive # deps/libakerror
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cmake -S . -B build
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cmake --build build
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cmake --install build
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```
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A top-level build compiles the vendored `deps/libakerror`. When `libakstdlib` is
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consumed as a subproject, it uses whatever `akerror::akerror` target or installed
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package the parent provides instead.
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## Testing
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There are four harnesses. The first three take seconds; the fourth takes about
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half an hour.
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### 1. The test suite
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```sh
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cmake -S . -B build
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cmake --build build
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ctest --test-dir build --output-on-failure
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```
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Tests live one per file in `tests/test_<name>.c` and share the helpers in
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`tests/aksl_capture.h` — `AKSL_CHECK()` for plain assertions (unlike `assert()`
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it survives `-DNDEBUG`), `AKSL_CHECK_STATUS(call, expected)` to run a wrapper and
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assert on the status it returns, and an `AKSL_RUN()` driver that additionally
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fails any test which leaks a slot from libakerror's error pool.
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To add a test, drop `tests/test_mything.c` in place and add `mything` to
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`AKSL_TESTS` in `CMakeLists.txt`.
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**Reading the results.** `CMakeLists.txt` splits tests into three lists, and two
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of them invert the meaning of "Passed":
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| List | Meaning |
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| `AKSL_TESTS` | Ordinary tests. Must exit 0. |
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| `AKSL_WILL_FAIL_TESTS` | Expected to abort by design — an unhandled error reaching `FINISH_NORETURN`, or a deliberate contract violation. Marked `WILL_FAIL`, so a non-zero exit is a pass. |
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| `AKSL_KNOWN_FAILING_TESTS` | Assert the *correct* behaviour of a confirmed defect (see `TODO.md` §2.1). Also marked `WILL_FAIL`. |
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So `ctest` reporting all green does **not** mean the library is defect-free — it
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means the known-good tests passed and the known-bad ones are still failing in the
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documented way. When a defect is fixed, its test starts passing, CTest reports it
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as failed with *unexpectedly passed*, and that is the cue to move it from
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`AKSL_KNOWN_FAILING_TESTS` into `AKSL_TESTS`.
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Every test is capped with a 30-second CTest `TIMEOUT`. The list and tree code is
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full of loops whose termination hangs on a single condition, so a bug of that
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shape hangs the suite rather than failing it.
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### 2. Sanitizers
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```sh
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cmake -S . -B build-asan -DAKSL_SANITIZE=ON
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cmake --build build-asan
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ctest --test-dir build-asan --output-on-failure
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```
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Builds the library, the tests and the vendored libakerror with ASan + UBSan and
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`-fno-sanitize-recover=all`. Several of the open items in `TODO.md` §2 only
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misbehave under instrumentation — the uninitialised `%s` in `aksl_realpath`, the
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unbounded `vsprintf` behind `aksl_sprintf`, the missing `va_end` in the `printf`
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family — so new tests for those should be run this way.
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### 3. Code coverage
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```sh
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cmake -S . -B build-coverage -DAKSL_COVERAGE=ON
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cmake --build build-coverage --target coverage
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```
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`-DAKSL_COVERAGE=ON` compiles the library and the tests with `--coverage -O0`,
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and wires the report into the suite itself, so a plain
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`ctest --test-dir build-coverage` also produces it. Two extra CTest entries
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appear, held in place by a CTest fixture rather than by declaration order, so
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they work under `ctest -j` too:
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| Test | When | Does |
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| `coverage_reset` | before every other test | deletes the accumulated `.gcda` counters |
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| `coverage_report` | after every other test | aggregates `gcov` output, prints the summary, applies the threshold gate |
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The reset matters: gcov counters are cumulative, so without it each report would
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fold in every earlier run and overstate coverage.
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CTest hides the output of a passing test, so `coverage_report` also writes
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`build-coverage/coverage-summary.txt` (the same text report) and
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`build-coverage/coverage.xml` (Cobertura, for CI publishers). The `coverage`
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target above prints the report to the terminal for you; otherwise read the file
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or use `ctest --test-dir build-coverage -V -R coverage_report`.
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The report lists per-file line, branch and function coverage, then every
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uncovered line and every function the suite never called — that listing is the
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actionable part, the same way surviving mutants are for the harness below.
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Drive the script directly for anything narrower:
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```sh
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scripts/coverage.py --build build-coverage # report on disk counters
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scripts/coverage.py --build build-coverage --summary-only # totals only
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scripts/coverage.py --build build-coverage --include tests # coverage of the tests themselves
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scripts/coverage.py --build build-coverage --run-tests # reset, run ctest, report
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scripts/coverage.py --build build-coverage --threshold 50 --branch-threshold 25
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```
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It needs nothing but Python 3 and gcc's own `gcov` — no lcov, gcovr or genhtml.
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To gate on coverage, set the threshold at configure time; `coverage_report` then
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fails below it, and the same regression-ratchet logic applies as for the mutation
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score:
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```sh
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cmake -S . -B build-coverage -DAKSL_COVERAGE=ON \
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-DAKSL_COVERAGE_THRESHOLD=50 -DAKSL_COVERAGE_BRANCH_THRESHOLD=20
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```
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Two caveats. Coverage is measured at `-O0`, because the optimizer reorders lines
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until per-line counts stop matching the source — so a coverage build is not the
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build to profile. And gcov flushes its counters at normal process exit, which an
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`AKSL_WILL_FAIL_TESTS` entry that aborts by design never reaches: such a test
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contributes no coverage data at all, so lines only it reaches are reported as
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uncovered.
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### 4. Mutation testing
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The suite tells you the library works. Mutation testing tells you the *suite*
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works: it breaks the library in small ways, one at a time, and checks that the
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tests notice.
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```sh
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cmake --build build --target mutation # src/stdlib.c + include/akstdlib.h
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```
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or drive the script directly for a faster or narrower run:
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```sh
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scripts/mutation_test.py --target src/stdlib.c # C source only
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scripts/mutation_test.py --target src/stdlib.c --list # enumerate, build nothing
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scripts/mutation_test.py --target src/stdlib.c --max-mutants 20
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scripts/mutation_test.py --target src/stdlib.c --threshold 40
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```
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A mutant that makes the tests fail is *killed* (good); one the tests still pass
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is a *survivor*, and names a missing test. The score is `killed / total`, and the
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run prints every survivor with `file:line` and the exact edit. The harness never
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touches your working tree — it copies the repo to a scratch directory and mutates
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the copy.
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CI runs the `src/stdlib.c` set with `--threshold 40`. That is a regression
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ratchet rather than a quality bar: the current score is 46.8%, and the survivors
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are concentrated in the wrappers that have no tests yet. Raise the threshold as
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coverage lands.
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## The pre-push hook
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`.githooks/pre-push` runs the fast harnesses — the default build and the
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sanitizer build, each followed by `ctest` — before letting a push out. Enable it
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once per clone:
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```sh
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git config core.hooksPath .githooks
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```
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It only builds when there are commits to push (a branch deletion is a no-op), and
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it builds under `.git/aksl-prepush` so it never disturbs your own `build/`.
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```sh
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AKSL_HOOK_MUTATION=1 git push # also run the mutation gate (slow)
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git push --no-verify # skip the hook entirely
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```
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Other knobs: `AKSL_MUTATION_THRESHOLD` (default 40, keep it in step with
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`.gitea/workflows/ci.yaml`) and `AKSL_HOOK_BUILD_DIR`.
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