Ten of the thirteen were already fully twinned — their runtime rows migrated in earlier waves (r56_def_*, r79_*, r78_*, r926_*, r989_m1union_*) and the carriers survived only for a cstage-vs-wwstage byte-compare the blanket test-data-byteid comparator owns once the source is a corpus fixture. The other three needed their remaining inline sources added first: r756_* (4, alias-chain unwrap), r844_bid_src (size(u64) untyped-int compare), r989_structframe_* (3, struct-local frame layout). Every new fixture was verified both-stage: compile exit 0 twice, .s byte-identical, runtime exit as pinned. The five ww_ww-driver-leg carriers among them (785/786/789/790/ m1union) follow the 815/940/951 precedent: content identity owned by their corpus twins, driver-leg identity owned by 989_lib_byteid's sweep. Byte/artifact partition 24 -> 11; carriers 147 -> 134; corpus pin 1495/2990; the stale 915 sweep figure in the docs corrected to the true 1,157 non-error count.
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WW test architecture
Status: active architecture as of 2026-08-07. The target graph, corpus
accounting, and complete test-commit gate have been rechecked, including its
two concurrency controls separately and together. The separately gated
byte-identity and test-infrastructure proofs have also run. Bootstrap and
platform proofs have not run as part of this revision.
Why the old suite was slow
The former suite made shell, Make, and one C executable per legacy case share ownership of discovery, registration, phase selection, scheduling, result records, timeout classification, and a last-green cache. Language behavior and byte-identity loops repeatedly rebuilt complete package graphs. The measured serial result was 411.403 seconds wall time, with a static lower bound of about 11,040 compiler-stage processes and 4,800 archive creations.
The replacement assigns each assertion to one owner and keeps expensive proof categories out of the ordinary developer target.
Owners
| Category | Owner |
|---|---|
| Arena, lexer, parser, checker, narrow codegen | Five in-process C unit binaries |
| Compile success/rejection, stage-routed diagnostics, and runtime exit | test/wcc/data/*/case.ww, executed by wwfixture |
| Package semantics | test/package and the native package-test coordinator |
| Language behavior | test/lang/*_test.ww through the language @test runtime |
| Library behavior | Library-owned @test sources named by LIBRARY_TESTS |
| Standalone library-source compilation | Four real source paths named by LIBRARY_STANDALONE_SOURCES, compiled directly by both frontends |
| Compiler-output identity | test-lang-byteid and test-data-byteid plus residual byte/artifact carriers |
| Fixed point and self-host | test-bootstrap |
| Host linker/platform behavior | test-platform |
The live declarative compiler corpus has 1,495 fixtures and 2,990 C/WW cells: 338 expected rejections (314 shared and 24 stage-specific), 17 compile-only successes, 198 exit-zero programs, and 942 explicit-exit programs.
134 native C carriers remain. They are partitioned exactly once as five
in-process units, 11 byte/artifact gates, six bootstrap gates, one platform
gate, and 111 residual compiler, package-layout, ABI, diagnostic-observer,
driver, linker, or FFI gates. Rows migrated to fixtures or native @test
owners were removed from those carriers; there is no compatibility execution
path for retired rows. 74 former byte/artifact carriers whose only assertion
was a cstage-vs-wwstage .s byte-compare of sources now living in the
corpus were retired into the blanket test-data-byteid comparator (the
last 13 had their remaining inline sources added as fixtures first); the
survivors observe something the blanket cannot: assembly patterns, symbol
tables, .wwi round-trips, or the wwstage-driver leg. Wwstage-driver-leg byte identity (ww_ww versus ww
over the emitted .s set) has one owner, 989_lib_byteid, whose unit
sweep spans lib test fixtures, import probes, and a zero-dep root-only
build; the former 815/940/951 driver-parity carriers were folded into it,
their content identity already owned by their corpus twins.
Carrier endgame
The declarative corpus and the native @test owners are the permanent
test surface — the go/test/ analogy. The native C carrier fleet is the
pre-Go-1.5 artifact and shrinks toward exactly two terminal classes:
- C-bootstrap observers. The five in-process units watch the C
frontend from inside its own process and are irreplaceable while
cmd/is the live frontend. The six bootstrap gates are the same class's proof column: they compare the wwstage tools against the C stage to a fixed point. At the eventual selfhost flip both freeze into a bootstrap smoke gate (Go 1.5 deleted its C toolchain and that toolchain's tests; it did not port them). - Host ABI/platform gates. Behavior owned by the host linker,
loader, or ABI (
996_dyn_wwtoday). These observe the platform, not the compiler, and stay native exactly as long as the claim is about the platform.
Everything else gets a ww owner. Byte and artifact observations —
assembly-pattern greps, symbol tables, frame layouts, .wwi
round-trips, driver-leg comparisons — are subprocess plus file IO plus
string search, which test/package/package_test.ww already performs
natively (runcommand + in-language assertions). A C carrier whose
assertions fit that shape is ported and retired in the same commit,
assertions preserved or strengthened, with no compatibility execution
path left behind. A carrier that is merely historical is deleted
outright; git history is the archive.
Public targets
| Target | Composition |
|---|---|
test |
Five in-process units plus one compile-only C/WW compiler-fixture smoke case |
test-compiler |
Complete fixture corpus plus residual compiler/integration carriers |
test-package |
Package planning, grouping, routing, and package runtime only |
test-lang |
Language-owned @test behavior |
test-library |
Library-owned @test behavior plus four direct standalone-source C/WW compilation checks |
test-commit |
Unit + compiler + package + language + library behavior |
test-byteid |
Compiler-output identity gates |
test-bootstrap |
Fixed-point bootstrap plus the 950/991–995 native gates |
test-platform |
Host-dependent dynamic-link gate |
test-wwfixture |
Fixture CLI/process/protocol integration boundary |
test-all |
Commit + byte-ID + bootstrap + platform + test-infrastructure checks |
test-commit deliberately excludes byte identity, bootstrap, and platform
work. test is intentionally smaller than the old target and is the ordinary
developer feedback gate. Its purpose is a short, direct path from a compiler
edit to useful evidence, not compliance with an arbitrary wall-clock cutoff.
Make and fixture scheduling have separate, explicit owners. The Makefile does
not detect CPU count or add -j to MAKEFLAGS; the caller selects Make
parallelism with the standard make -jN option. JOBS ?= 1 controls only the
wwfixture -j N value passed by test-compiler. A normal fast gate can use
both layers deliberately:
make -j4 JOBS=4 test-commit
For deterministic failure reproduction, make both layers serial explicitly:
make -j1 JOBS=1 test-commit
Serial execution is a debugging mode, not a correctness requirement. JOBS
is not inferred from MAKEFLAGS, and there is no jobserver adapter or second
scheduler hidden in Make.
nocc remains the separate, explicit reproduction route from a checked-in
stage-0 snapshot. It is not an implicit prerequisite of ordinary tests or of
test-bootstrap, because it has an external stage-0 precondition.
Compiler fixtures
Each fixture is one directory with one case.ww. Its first line is exactly one
of:
//ww:error "required diagnostic fragment"
//ww:error c "C-stage fragment" ww "WW-stage fragment"
//ww:compile
//ww:run
//ww:run-exit N
errorrequires normal nonzero frontend termination and the declared stderr fragment. The labeled form routes distinct fragments to the C and WW cells; labels are fixed-order and neither fragment is treated as a shared fallback.compilerequires frontend exit zero and produces no executable.runbuilds and requires normal program exit zero.run-exit Nbuilds and requires normal program exitN.
Every fixture is run against the C and WW frontends. Signals, launch failures,
timeouts, build failures, and runtime exits are distinct outcomes.
test-compiler passes -j $(JOBS) and therefore uses one fixture slot by
default. The direct wwfixture CLI retains its own four-slot default; pass
-j N when its concurrency must be explicit. Its existing
os.exec.start/poll loop supervises the independent processes. Each cell has
its own working directory; filesystem fixtures use that directory or an
existing temp.named path rather than a shared fixed pathname.
The old TESTS list and all explicit per-wrapper Make rules are gone. A
surviving C carrier is registered only by its source file and built through one
generic pattern rule. Four arena/frontend units share a static rule; the codegen
unit links the existing private cgen and text-emitter objects directly.
test/wwfixture/integration.sh remains the direct black-box owner for behavior
that exists only at the command/process/protocol boundary: filtering and list
output, phase and outcome classification, diagnostic routing, malformed-corpus
and identity-drift rejection, signal/timeout/interruption cleanup, publication
failure, and strict result-stream decoding. Semantic fixtures cannot prove
those observations about their coordinator. test/wwfixture/process/main.ww
owns the lower-level os.exec primitives, not the CLI policy layered over
them, so it is complementary rather than a duplicate owner.
The five unit sources have zero active system, popen, fork, or exec
calls. Before direct conversion they contained two popen call sites and a full
test-unit run launched one ww -V plus twelve w6c processes. 400_w6c now
checks the same twelve assembly fragments in process, grouped under ten unique
sources. The CLI version assertion lives with C/WW-driver parity in the existing
949_driver_flagargs integration carrier; 000_smoke retains its arena-growth
and nonempty-version-constant assertions.
Package and language behavior
ww test delegates directory package requests to the native package
coordinator. The coordinator owns discovery, package grouping, same-package and
external-package test composition, filtering, result aggregation, and its
internal temporary workspace. With -c, it publishes each exact
<package>.test binary and adjacent <package>.test.sepwork tree in the
package directory; those become caller-owned artifacts. Without -c, it
removes the temporary binary and scratch with its workspace. The language
runtime owns individual @test functions.
Separate compilation is the only driver build path; no compatibility mode switch remains.
ww build, an explicit single-file ww test -o <stem>, and each successful
directory-package ww test -c build publish <stem>.sepwork as a caller-owned
artifact directory. The driver acquires it with one fresh mkdir and refuses
an existing path; it never clears a collision. A caller keeps only the exact
artifacts it observes and removes that exact tree on every later success or
failure. ww run and no-output single-file ww test use driver-owned scratch
instead; both driver stages place that scratch and their temporary executable
beneath one freshly acquired directory, remove both after every build result,
and make cleanup failure fail the command. Make recipes build driver-produced
tools in invocation-owned directories and apply the same exact cleanup rule.
test/lang currently uses one package per source file, so its complete gate
still performs independent package builds. That remaining source layout is not
hidden behind caching or concurrency; it is outside the small test target.
Compiler-only byte identity
ww build -S and ww test -S -o <stem> run source discovery, dependency
ordering, unit composition, and each required w6c -c invocation. They return
after the complete .s/.wwi set exists. The producer loop does not invoke
w6a, create per-package archives, or invoke w6l when -S is active.
test-lang-byteid runs the 158 selected language files once with C w6c and
once with WW w6c, requires identical emitted .s filename sets including
__root.s, and compares those bytes. Relative to the old two-leg full builds,
this removes at least 3,476 assembler launches, 3,160 archive writes, and 316
linker launches from the comparison loop. A cold Make invocation may still
build prerequisite compiler binaries; the compiler-only claim applies to the
per-language-file comparison path.
test-data-byteid applies the same comparator to the declarative corpus:
every non-error case.ww builds twice through the fixed cstage driver with
only WW_W6C swapped, and every emitted per-package .s must be
byte-identical. //ww:error fixtures have no .s; their both-stage reject
parity is owned by the fixture corpus itself. Known cs/ww divergences are
pinned in DATABYTEID_DIVERGED with the 989_lib_byteid discipline: a
pinned fixture must still build on both stages and still differ, so a
compiler fix fails the gate demanding graduation rather than silently
widening coverage. The full sweep compares the 1,157 non-error fixtures
in about a minute and is scratch-rooted under out/, not /tmp.
Byte identity is an explicit proof gate. It is not a prerequisite of test or
test-commit.
Bootstrap, subprocesses, and CSP
Stage-2-through-stage-4 fixed-point proofs and the 950/991–995 self-host gates
are reachable through test-bootstrap and test-all, never through test or
test-commit. Cold ordinary targets may still build their C- and WW-stage tool
prerequisites once; they do not iterate those tools to a fixed point. The C
bootstrap source and the standalone nocc route remain intact.
The bootstrap recipe owns the fixed out/bootstrap tree. Make schedules that
target once within one invocation, but two independent make bootstrap
invocations are not safe to run concurrently and remain mutually exclusive.
lib/os/exec is the sole reusable WW subprocess mechanism. Fixture and package
coordinators use its captured asynchronous path. The WW driver directly uses
os.exec.runstdio for inherited-stdio, inherited-environment, leader-only
compiler, assembler, linker, cleanup, run, and single-file-test calls. The
local WW procrun implementation is deleted. The C bootstrap retains its C
process implementation because it cannot consume a WW standard-library
module.
WW has tokens and an opaque type for future CSP/channel work, but no mature production channel operations, task runtime, or scheduler. No channel, goroutine, thread, worker-runtime, or CSP library was added. Coordinators stay single-threaded; OS process polling does not require language-level threads.
Retired mechanisms
The following are deleted, not adapted:
test/run, including its phase classifier,xargsscheduler, atomic private records, timeout-text classifier, result collector, and last-green cache;test/run_test.sh, the synthetic shell tests for that protocol;- every explicit
TESTSregistration and all 329 explicit wrapper rules; - the unregistered
test/runww.wwcorpus runner; - frozen duplicate compiler-corpus code under
internal/wwtest,test/wwtest, andtest/compiler; - the redundant standalone
smoke,test-run, andtest-harnessroutes; and - library-launcher wrappers whose only assertion was an existing
@testsource's exit status, including the declarative900_stdlib.clauncher.
There is no test cache, daemon, scanner, generated manifest, database, new framework, compatibility API, concurrency runtime, dependency, or changed timeout policy in this architecture.
Open driver work
Carried over from the dissolved project plan; each is deliberate scope, not drift:
- Recursive package discovery (a
./...-equivalent pattern) forww test. - Package-level concurrency for the coordinator's builds (it is single-threaded by design today).
- A package-level
-ocontract (single-fileww test -oexists; directory packages publish fixed<package>.teststems under-c). - Universal
*_test.wwfilename migration for library tests (several library suites still use the older*test.wwnames, enumerated byLIBRARY_TESTSand the989_lib_byteidroster). - The remaining invalid-
@testattribute-shape diagnostics (exported tests, prototypes, arguments, variadics, non-void returns, duplicate annotations) with stable text in both frontends.
Validation policy
Use test-unit as the inner loop for lexer, parser, checker, and narrow codegen
changes. Run test for the ordinary local compiler check, followed by the
focused owner for the changed behavior. Use test-commit for ordinary
pre-commit behavior; use make -j4 JOBS=4 test-commit when parallel feedback is
desired, and make -j1 JOBS=1 ... to reproduce failures deterministically.
Run test-byteid and test-bootstrap only when those proof categories are
intended. test-all is the exhaustive CI/release composition and should not be
launched casually.