Files
AILang/bench/run.sh
T
Brummel 9fdc4cacff iter form-a.1 (Tasks 6-12): milestone close
Second half of the form-a-default-authoring milestone-close iter
(Boss-decided strategy C, big-bang). All seven tasks DONE; cargo
test --workspace green at every per-task boundary.

T6 — Bench-driver suffix flip from .ail.json to .ail across 4
Python scripts + run.sh. compile_check.py + cross_lang.py exit 0.

T7 — Re-author e2e.rs raw-JSON-inspect tests:
- diff_detects_changed_def — derive sum.ail.json on-the-fly via
  `ail parse examples/sum.ail` into tempdir, then mutate + diff.
- borrow_own_demo_modes_are_metadata_only — same pattern.
- reuse_as_demo_under_rc_uses_inplace_rewrite — same pattern.
- render_parse_round_trip_canonical — RETIRED (subsumed by T1's
  cli_parse_then_render_then_parse_is_idempotent over whole corpus).
- ail_run_accepts_ail_source_with_same_stdout_as_ail_json —
  re-authored to derive hello.ail.json in a per-process tempdir
  from hello.ail via `ail parse`, then assert dual-form stdout.

T8 — Bulk-delete 156 non-carve-out .ail.json. Inventory:
8 .ail.json (carve-outs, alphabetical: broken_unbound + prelude
+ 3× test_22b2_* + 3× test_ct1_*) + 157 .ail. carve_out_inventory
test un-#[ignore]'d and green. Forward-pulled 20 repairs that the
T1-5 dispatch's recon missed (12 Group-B suffix + 5 Group-A
load_workspace + 3 ail_run sites). Also forward-pulled T9 Step 5
(schema_coverage corpus flip from .ail.json to .ail) to satisfy
T8's green-gate.

T9 — Retire obsolete roundtrip tests:
- print_then_parse_round_trips_every_fixture (round_trip.rs)
- every_ail_fixture_matches_its_json_counterpart (round_trip.rs)
- cli_render_then_parse_preserves_canonical_bytes_on_every_fixture
- Dead helpers: list_json_fixtures ×2, round_trip_one,
  strip_trailing_newlines.
Schema-coverage corpus already flipped in T8 (forward-pull).

T10 — DESIGN.md §"Roundtrip Invariant" (lines 2027-2109) restated
with parse-determinism + idempotency + CLI-pipeline-idempotency +
carve-out-anchor framing. Five surviving enforcement tests named.
§"Float literals" and §"Why anchored at top level" preserved.

T11 — §A4 doctrine edits: CLAUDE.md:5-6 + DESIGN.md:465-466.
Canonical form remains JSON-AST; authoring projection is .ail;
build derives JSON-AST in-process via ailang_surface::parse.

T12 — Milestone close:
- WhatsNew entry: user-facing language, lead with the change.
- Roadmap: [milestone] form-a struck [x] with closing note.
- Final inventory verified: 8 .ail.json + 157 .ail.
- Final cargo test --workspace: 557 passed, 0 failed, 3 ignored.
- bench/compile_check.py + bench/cross_lang.py: exit 0.

Test math: pre-iter 558 baseline + 3 new T1 tests = 561, − 1
(T7 retire) − 3 (T9 retire) = 557 final.

INDEX.md appended with the full iter summary covering T1-T12 (the
T1-5 commit at 77b28ad deferred the INDEX line to full-iter close).

Milestone [Form-A as the default authoring surface] structurally
closed. The compile-time-embed carve-out (prelude.ail.json) is
the subject of the queued follow-up milestone [Prelude embed:
Form-A as compile-time source]. audit-form-a runs as the next
dispatch.
2026-05-13 11:31:39 +02:00

209 lines
8.2 KiB
Bash
Executable File

#!/usr/bin/env bash
#
# GC-overhead bench harness (Bench iter).
#
# Builds each fixture twice — `--alloc=gc` (Boehm conservative GC) and
# `--alloc=bump` (no-free 256 MB arena from `runtime/bump.c`). Runs each
# binary N times, drops the slowest run, takes the median wall time.
# The bump number minus the gc number is the upper-bound cost of GC.
#
# Output: a table with gc-median, bump-median, overhead %, and max RSS
# for both modes. Designed to be captured verbatim into a JOURNAL entry.
#
# Requirements: bash, /usr/bin/time -v (GNU coreutils), bc, sort, awk,
# a release-mode `ail` binary.
#
# Usage: bench/run.sh [-n RUNS]
# -n RUNS number of timed runs per binary (default 5; min 3 so we
# can drop the slowest and still take a median over 4).
set -euo pipefail
RUNS=5
while getopts "n:" opt; do
case $opt in
n) RUNS="$OPTARG" ;;
*) echo "usage: $0 [-n RUNS]" >&2; exit 2 ;;
esac
done
if (( RUNS < 3 )); then
echo "RUNS must be >= 3" >&2
exit 2
fi
# Anchor at the workspace root regardless of CWD.
SCRIPT_DIR="$(cd "$(dirname "${BASH_SOURCE[0]}")" && pwd)"
ROOT="$(cd "$SCRIPT_DIR/.." && pwd)"
cd "$ROOT"
# We measure wall-clock + max RSS via a small Python helper that wraps
# the binary, calls `time.monotonic()` around `os.waitpid`, and reads
# `getrusage(RUSAGE_CHILDREN).ru_maxrss` (KB on Linux). This avoids a
# /usr/bin/time dependency (Arch / minimal containers often don't have
# the GNU coreutils `time` binary installed) without sacrificing
# either signal: monotonic clocks for wall time, kernel-reported peak
# resident set for RSS.
PY="$(command -v python3 || true)"
if [[ -z "$PY" ]]; then
echo "error: python3 is required for the timing helper" >&2
exit 2
fi
# Build the release `ail` binary if needed.
echo ">>> ensuring release ail binary"
cargo build --release -p ail >/dev/null
AIL="$ROOT/target/release/ail"
[[ -x "$AIL" ]] || { echo "ail binary missing: $AIL" >&2; exit 1; }
OUTDIR="$ROOT/target/bench"
mkdir -p "$OUTDIR"
# Compile both modes for both fixtures up front so the bench loop only
# measures runtime, not build time.
fixtures=(bench_list_sum bench_tree_walk bench_closure_chain bench_hof_pipeline bench_compute_collatz bench_list_sum_explicit)
modes=(gc bump rc)
echo ">>> compiling fixtures (-O2)"
for f in "${fixtures[@]}"; do
src="$ROOT/examples/$f.ail"
[[ -f "$src" ]] || { echo "missing fixture: $src" >&2; exit 1; }
for m in "${modes[@]}"; do
bin="$OUTDIR/${f}_${m}"
echo " $f --alloc=$m -> $bin"
"$AIL" build --opt=-O2 --alloc="$m" "$src" -o "$bin" >/dev/null
done
done
# Time one binary one time. Wraps the binary in a Python helper that
# measures wall-clock via time.monotonic() and max RSS (KB) via
# getrusage(RUSAGE_CHILDREN).ru_maxrss after the child exits. Stdout
# of the binary is discarded; we already verified correctness via a
# smoke run earlier. Output: "wall_seconds rss_kb" on a single line.
time_one() {
local bin="$1"
"$PY" -c '
import os, resource, subprocess, sys, time
bin_path = sys.argv[1]
t0 = time.monotonic()
p = subprocess.Popen([bin_path], stdout=subprocess.DEVNULL, stderr=subprocess.DEVNULL)
p.wait()
t1 = time.monotonic()
ru = resource.getrusage(resource.RUSAGE_CHILDREN)
# ru_maxrss is in KB on Linux. We want the peak across only this child;
# RUSAGE_CHILDREN is cumulative across all children of the helper, but
# the helper only spawns this one child per invocation, so the value is
# this run.
print(f"{t1 - t0:.6f} {ru.ru_maxrss}")
sys.exit(0 if p.returncode == 0 else 1)
' "$bin"
}
# Run a binary RUNS times, drop the slowest run by wall time, return
# median of the rest as `wall rss` (rss = max across the kept runs).
median_run() {
local bin="$1"
local times=()
local rsses=()
for ((i = 0; i < RUNS; i++)); do
read -r w r < <(time_one "$bin")
times+=("$w")
rsses+=("$r")
done
# Compute index of slowest (largest wall) and drop it.
local slowest_idx=0
for ((i = 1; i < ${#times[@]}; i++)); do
if [[ $(awk -v a="${times[$i]}" -v b="${times[$slowest_idx]}" 'BEGIN { print (a > b) ? 1 : 0 }') == 1 ]]; then
slowest_idx=$i
fi
done
local kept_t=()
local kept_r=()
for ((i = 0; i < ${#times[@]}; i++)); do
if [[ $i -ne $slowest_idx ]]; then
kept_t+=("${times[$i]}")
kept_r+=("${rsses[$i]}")
fi
done
# Median wall over kept runs.
local sorted_t
sorted_t=$(printf "%s\n" "${kept_t[@]}" | sort -g)
local n=${#kept_t[@]}
local mid=$((n / 2))
local median_t
if (( n % 2 == 1 )); then
median_t=$(echo "$sorted_t" | sed -n "$((mid + 1))p")
else
local a b
a=$(echo "$sorted_t" | sed -n "${mid}p")
b=$(echo "$sorted_t" | sed -n "$((mid + 1))p")
median_t=$(awk -v a="$a" -v b="$b" 'BEGIN { printf "%.6f", (a + b) / 2 }')
fi
# Max RSS across kept runs (peak memory is the natural per-run agg).
local max_r=0
for r in "${kept_r[@]}"; do
if (( r > max_r )); then max_r=$r; fi
done
printf "%s %s\n" "$median_t" "$max_r"
}
echo
echo ">>> timing (RUNS=$RUNS, drop slowest, median of $((RUNS - 1)))"
echo
# Header. Iter 18f added the rc column + an "rc/bump" ratio, the
# decisive number for Decision 10's Boehm-retirement target (1.3x).
printf "%-22s | %10s | %10s | %10s | %10s | %10s | %12s | %12s | %12s\n" \
"workload" "gc(s)" "bump(s)" "rc(s)" "gc/bump" "rc/bump" "gc RSS(KB)" "bump RSS(KB)" "rc RSS(KB)"
printf -- "-----------------------+------------+------------+------------+------------+------------+--------------+--------------+--------------\n"
for f in "${fixtures[@]}"; do
read -r gc_t gc_r < <(median_run "$OUTDIR/${f}_gc")
read -r bp_t bp_r < <(median_run "$OUTDIR/${f}_bump")
read -r rc_t rc_r < <(median_run "$OUTDIR/${f}_rc")
# Guard against bump_t == 0 (LLVM-folded sub-microsecond fixtures).
gc_ratio=$(awk -v g="$gc_t" -v b="$bp_t" 'BEGIN { if (b+0 == 0) printf "n/a"; else printf "%.2fx", g / b }')
rc_ratio=$(awk -v r="$rc_t" -v b="$bp_t" 'BEGIN { if (b+0 == 0) printf "n/a"; else printf "%.2fx", r / b }')
printf "%-22s | %10s | %10s | %10s | %10s | %10s | %12s | %12s | %12s\n" \
"$f" "$gc_t" "$bp_t" "$rc_t" "$gc_ratio" "$rc_ratio" "$gc_r" "$bp_r" "$rc_r"
done
# Iter 18g tidy: latency bench. The throughput table above is wall-
# time-and-RSS — the wrong metric for Decision 10's real-time claim.
# `bench/latency_harness.py` measures per-operation tail latency
# (median + p99 + p99.9 + max) on PTY-line-buffered stdout for the
# `bench_latency_*` fixtures. We invoke it for the three canonical
# arms (Boehm-fair Implicit @ gc, RC-fair explicit @ rc, control
# Implicit @ rc) and emit a second table.
#
# Skipped if the harness / fixtures aren't present (the latency bench
# was added in 18f.2 and may not exist on older branches that share
# this script).
LAT_HARNESS="$ROOT/bench/latency_harness.py"
LAT_IMPL_SRC="$ROOT/examples/bench_latency_implicit.ail"
LAT_EXPL_SRC="$ROOT/examples/bench_latency_explicit.ail"
if [[ -x "$LAT_HARNESS" && -f "$LAT_IMPL_SRC" && -f "$LAT_EXPL_SRC" ]]; then
echo
echo ">>> latency bench (PTY inter-arrival, 1000 samples per arm)"
echo
# Build the three arms. -O2 to match the throughput table.
"$AIL" build --opt=-O2 --alloc=gc "$LAT_IMPL_SRC" -o "$OUTDIR/bench_latency_implicit_gc" >/dev/null
"$AIL" build --opt=-O2 --alloc=rc "$LAT_EXPL_SRC" -o "$OUTDIR/bench_latency_explicit_rc" >/dev/null
"$AIL" build --opt=-O2 --alloc=rc "$LAT_IMPL_SRC" -o "$OUTDIR/bench_latency_implicit_rc" >/dev/null
# The harness prints a multi-line block per arm; we let it speak
# for itself. The orchestrator captures the verbatim output into a
# JOURNAL entry like the throughput table above. `--runs 5` runs
# each arm five times; the harness drops the slowest run and
# reports median + range per cell, matching the throughput
# table's drop-slowest convention.
"$PY" "$LAT_HARNESS" "$OUTDIR/bench_latency_implicit_gc" --runs 5 --label "implicit @ gc (Boehm-fair)"
echo
"$PY" "$LAT_HARNESS" "$OUTDIR/bench_latency_explicit_rc" --runs 5 --label "explicit @ rc (RC-fair)"
echo
"$PY" "$LAT_HARNESS" "$OUTDIR/bench_latency_implicit_rc" --runs 5 --label "implicit @ rc (control: leaks, no STW)"
fi
echo
echo ">>> done"