src/error.c now scores 81.4%: 245 of 301 mutants killed, 211 by a failing test, 24 by failing to compile, and 10 by hanging the suite. The population grew by 8 with akerr_exit(), and all 8 die, as do the 4 in akerr_default_handler_unhandled_error() -- no survivor anywhere in either function. Two of those are worth naming. Mutating the guard to status < 1 (the sentinel-for-zero behaviour this library deliberately does not have) and mutating the NULL-context exit(1) to exit(0) both die, so the tests pin the two ways an exit could start claiming success rather than just the one that was broken. That moves the default handler out of the "needs a subprocess test" survivor category noted here: it has one now. The default *logger* is still in it -- every other test swaps in the capturing logger, so nothing watches what the real one writes to stderr. Co-Authored-By: Claude Opus 5 (1M context) <noreply@anthropic.com>
167 lines
8.1 KiB
Markdown
167 lines
8.1 KiB
Markdown
# Mutation testing
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The unit tests tell us the library works. **Mutation testing tells us the tests
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work** — that they would actually fail if the library were broken.
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`scripts/mutation_test.py` deliberately breaks the library in small ways
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("mutants"), one at a time, and runs the whole CTest suite against each broken
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copy:
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* if the tests **fail**, the mutant is **killed** — good, the suite caught it;
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* if the tests still **pass**, the mutant **survived** — a bug of that shape
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would slip through, so it points at a missing test.
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The **mutation score** is `killed / (killed + survived)`. A surviving mutant is
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a to-do item: write a test that distinguishes the mutant from the original.
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## Running
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No third-party tools are required — just Python 3 and the normal
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cmake/ctest toolchain. The harness never touches your working tree; it copies
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the repo to a scratch directory and mutates the copy.
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```sh
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# Default: mutate src/error.c and include/akerror.tmpl.h
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scripts/mutation_test.py
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# Faster: just the C source
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scripts/mutation_test.py --target src/error.c
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# See what would run without building anything
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scripts/mutation_test.py --target src/error.c --list
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# Gate CI: exit non-zero if the score drops below 90%
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scripts/mutation_test.py --threshold 90
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```
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Via CMake (configures a build first if needed):
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```sh
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cmake --build build --target mutation
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```
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Useful flags: `--timeout SECONDS` (per-suite build+test cap; a mutant that
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hangs is counted as killed), `--keep` (retain the scratch copy for debugging),
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`--work DIR` (use a specific scratch directory), `--junit FILE` (write a JUnit
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XML report — surviving mutants appear as failing test cases).
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## CI reporting
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Both the unit tests and the mutation run emit JUnit XML that CI consumes:
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* `ctest --test-dir build --output-junit "$(pwd)/ctest-junit.xml"` — note the
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absolute path; `--output-junit` otherwise resolves relative to the test dir.
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* `scripts/mutation_test.py --junit mutation-junit.xml`
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`.gitea/workflows/ci.yaml` runs both and feeds the XML to
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`mikepenz/action-junit-report` (with `if: always()`, so results publish even
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when a gate fails). The reporter runs with `annotate_only: true`: Gitea does not
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implement the Checks API the action uses to create a check run, so creating one
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404s (mikepenz/action-junit-report#23). `annotate_only` skips that call and the
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results surface via the job summary (`detailed_summary: true`) instead. The
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generated `*-junit.xml` files are git-ignored.
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## Mutation operators
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Each mutant changes exactly one location by one of:
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| Tag | Operator | Example |
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|-----|--------------------------------|----------------------------------|
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| ROR | relational operator | `==` → `!=`, `<` → `<=`, `>=` → `>` |
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| LCR | logical connector | `&&` → `\|\|` |
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| BCR | boolean constant | `true` → `false` |
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| AOR | arithmetic / compound assign | `+` → `-`, `+=` → `-=` |
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| ICR | integer literal | `0` → `1`, `1` → `0` |
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| SDL | statement deletion | `err->refcount += 1;` → *(removed)* |
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Preprocessor control lines, comments, and the block of error-code / buffer-size
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`#define`s are skipped: mutating those produces equivalent or uninteresting
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mutants that only add noise.
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## Interpreting survivors
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Not every survivor is a test gap — some mutants are **equivalent** (they don't
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change observable behaviour, e.g. resizing an internal scratch buffer). For each
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survivor, decide:
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1. **Real gap** → add or strengthen a test in `tests/` so the mutant is killed,
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then re-run.
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2. **Equivalent mutant** → no test can catch it; leave a note. If a specific
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line is a persistent source of equivalents, narrow the target with
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`--target` or extend the skip rules in `scripts/mutation_test.py`.
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Re-run after adding tests and confirm the score went up.
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## Current status
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`src/error.c` scores 81.4% — 245 of 301 mutants killed (211 by a failing test,
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24 by failing to compile, 10 by hanging the suite), 56 surviving. The CI gate is
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set to 65% for headroom.
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The ten timeout kills are all in the locking: deleting `akerr_mutex_init()` or
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the `akerr_initializing` re-entry guard deadlocks the very first test, which is
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the correct behaviour for a broken lock and is why the harness counts a hang as
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a kill.
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The remaining survivors are dominated by:
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* **Equivalent mutants** in `akerr_init`: deleting the `memset`/`NULL` setup of
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file-scope statics (`AKERR_ARRAY_ERROR`, `__akerr_last_ditch`,
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`__akerr_last_ignored`) changes nothing, because C already zero-initializes
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objects with static storage duration. `int oldid = 0;` → `1` is likewise
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dead: it is overwritten before use, and so is clearing `akerr_initializing`
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at the end of initialization — nothing reads that flag once the once-routine
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has returned.
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* **Lock acquisition** (`akerr_mutex_lock`/`unlock` deletions, and the
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`akerr_init()` call at the head of an entry point). These are the one category
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where a survivor does *not* mean the mutant is harmless. Removing a lock
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leaves a real race, and the assertions in `tests/err_threads_pool.c` only fire
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when the race actually loses: rebuilding the surviving mutant and running that
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test ten times caught it **four** times. The same mutant under
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`scripts/thread_test.sh` failed **five of five**, with no false positive on
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the unmutated library — but the mutation harness builds without sanitizers, so
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it never sees that. Deleting an `akerr_init()` call survives for a duller
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reason: something else has always initialized the library by the time that
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line runs.
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* **The default logger** (`vfprintf`, `va_end`, and the `return` in the
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no-stdlib branch): the other tests replace `akerr_log_method` with the
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in-process capturing logger, so nothing observes what the default one writes
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to a real stderr. Killing these needs a test that captures a child's stderr.
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The *handler* internals next to them are no longer in this category:
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`tests/err_unhandled_null.c` and `tests/err_exit_status.c` read a forked
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child's exit code, which kills every mutant in `akerr_exit()` and in
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`akerr_default_handler_unhandled_error()` — all twelve of them, including the
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`status < 0` → `status < 1` variant that only a test asserting
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`akerr_exit(0)` exits 0 can distinguish.
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* **Static assertions** (`akerr_assert_name_slots_pow2` and the occupancy cap
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it guards): a mutated compile-time assertion that still compiles has no
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runtime behavior to observe. Unkillable by construction — the assertion is
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itself the test, and `tests/err_maxval.c` covers the runtime consequence.
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* **Hash and probe details** in `akerr_status_slot`: dropping one of the
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multiply steps in `akerr_status_hash` leaves a worse but still correct hash,
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and probing backwards (`slot - 1u`) is an equally valid sequence over a
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power-of-two table. Both are behaviorally equivalent.
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* **The `capacity <= 0` guard** in `akerr_copy_string`, which is defensive: both
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call sites pass a positive constant.
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Findings surfaced by mutation testing:
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* **Open:** the harness builds every mutant with the default CMake options, so a
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mutant that only breaks under concurrency is judged by a suite running without
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ThreadSanitizer. Mutating under `-DAKERR_SANITIZE=thread` would close that,
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and needs a way to pass CMake options through to the mutant build. See
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"Mutation testing judges concurrency mutants without a sanitizer" in
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`TODO.md`.
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* **Superseded:** status names now use a private sparse registry, so the old
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public `AKERR_MAX_ERR_VALUE` ceiling and its consumer ABI mismatch no longer
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exist. `tests/err_maxval.c` covers arbitrary `int` values and registry
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exhaustion.
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* **Fixed:** the open-addressing probe mask (`& (AKERR_STATUS_NAME_SLOTS - 1)`)
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could be mutated to `- 0` or `+ 1` — both of which index past the end of the
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table — without any test noticing. `tests/err_maxval.c` only asserted that
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*some* names registered before the table filled, which a collapsed probe
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sequence still satisfies. It now requires a substantial number of entries and
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reads every one of them back by its own distinct name, so a probe that
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revisits slots fails on both counts.
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