Files
scene-actor-extraction/scripts/optimizer/optimize.py
T
dtourolle 6f0ad83a55 feat(tooling): X-Ray threshold optimizer, gallery utilities, artifact registry, docs build
Optimizer (scripts/optimizer/): replay.py runs the real C++ tracker/matcher/
scene_tracker chain over a dumped-embeddings HDF5 via sae_kpn, so a threshold
sweep never re-decodes video or re-embeds faces. optimize.py drives scipy's
differential_evolution over the knob space, with DE-level parallelism
(multiple population candidates evaluated concurrently via a ThreadPoolExecutor)
on top of per-film replay parallelism. second_score.py is the per-second X-Ray
scoring metric (TPI/FPI/FN, out-of-cast misID weighted 10x, fair recall masked
to gallery-known cast) that superseded an earlier scene-union metric.
dump_error_frames.py / dump_scene_montage.py extract annotated video frames
(bounding boxes, TPI/FPI/FN captions, onscreen-vs-offscreen split) for visual
review of a replay against ground truth. Gallery utilities: cast_restrict.py,
gallery_membership.py, fetch_missing_actors.py, reembed_gallery.py.

scripts/validation/: X-Ray ground-truth loading and provider-agnostic identity
matching (identity.py's keys_for — an actor is the union of every id we can
derive, since pipeline output and ground truth don't share one id space).

scripts/artifacts/: push/pull scripts for the Gitea generic package registry —
galleries, montage frames, and experiment data (manifests/trajectories/results)
are pushed there instead of committed, since none are needed to run the app,
only benchmarks. Versioned by git short-SHA.

scripts/docs/: MkDocs site build (build_site.sh) and the calibration-curve
comparison chart (calibration_chart.py, matplotlib, reads each gallery's
embedded calibration).

Gallery-building scripts (make_jellyfin_gallery.py, make_gallery.py,
filter_gallery.py, run_from_jellyfin.py, movienet_eval.py, movienet_prep.py,
sae_gallery.py) updated to read/write HDF5 galleries exclusively, matching the
engine-side format switch. run_from_jellyfin.py and the optimizer no longer
carry movie source paths in shared manifests (some source filenames include
scene-release tags) — resolved locally via a gitignored file-lut.json instead.
2026-07-19 19:06:48 +02:00

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#!/usr/bin/env python3
"""
optimize.py — Differential Evolution over pipeline thresholds, scored against X-Ray.
Replaces the coarse grid sweep with scipy's differential_evolution over the
continuous knob space. Each candidate config is a full-9-film replay (real KPN
nodes) scored against Amazon X-Ray presence, micro-averaged. The gallery is loaded
once per process (binding caches by path), so an evaluation is just N cheap replays.
Objective: **maximize micro-F1** (DE minimizes, so we return -F1). NOTE: X-Ray recall
is a face-vs-cast-in-scene ceiling (see [[xray-validation-results]]), so unconstrained
F1 tends to push prob_threshold DOWN to recover unreachable recall — trading real
precision for it. We therefore log precision/recall at every evaluation and print
them at the optimum so the trade-off is visible and you can pick another operating
point from the trajectory (--trajectory).
Usage:
python scripts/optimizer/optimize.py --manifest films.json \
--gallery gallery_arcface_w600k_r50.json \
--params prob_threshold:0.5:0.999 anneal_sec:1:30 extinction_sec:1:15 \
--popsize 20 --maxiter 25 --trajectory traj.json
"""
from __future__ import annotations
import argparse
import json
import sys
import time
from pathlib import Path
import numpy as np
from scipy.optimize import differential_evolution
REPO = Path(__file__).resolve().parent.parent.parent
sys.path.insert(0, str(REPO / "scripts" / "optimizer"))
sys.path.insert(0, str(REPO / "scripts" / "validation"))
import json as _json
import os
import subprocess
import tempfile
import threading
from concurrent.futures import ThreadPoolExecutor
# Concurrent per-eval replays. Each replay is an isolated subprocess, so parallelism
# is deadlock-safe; with 9 films/eval, 8 workers replays nearly all at once. Tune via
# REPLAY_WORKERS (8 is the measured sweet spot on this 24GB GPU).
REPLAY_WORKERS = int(os.environ.get("REPLAY_WORKERS", "8"))
# DE-level parallelism: how many population candidates get evaluated concurrently
# (each spawning its own REPLAY_WORKERS film subprocesses). Total concurrent GPU
# replay processes ≈ DE_WORKERS × min(REPLAY_WORKERS, n_films). Threads, not
# multiprocessing — each objective() call just waits on subprocess.run, so threads
# share the GIL fine and avoid pickling the objective/gallery-key cache.
DE_WORKERS = int(os.environ.get("DE_WORKERS", "1"))
from second_score import score_seconds # noqa: E402 uniform per-second TPI/FPI scoring
from sample_eval import load_gallery_keys # noqa: E402
_GAL_KEYS: dict = {} # gallery path → key set (fair-recall FN mask), loaded once
_REPLAY_TIMEOUT = 45 # seconds per film; a wedged replay is killed, not left to hang
REPLAY_CLI = str(Path(__file__).resolve().parent / "replay.py")
def _gallery_keys(path):
if path not in _GAL_KEYS:
_GAL_KEYS[path] = load_gallery_keys(path)
return _GAL_KEYS[path]
def _replay_subprocess(dump, gallery, cfg, build_dir):
"""Run one replay in a SUBPROCESS with a timeout, returning its presence JSON.
In-process replay intermittently DEADLOCKS at network teardown — a KPN worker
stuck mid-rocBLAS GEMM inside the ROCm driver makes ~PyNode's jthread.join() hang
forever (root-caused via gdb, 2026-07-15). Isolating each replay means a wedged
GPU thread only kills that subprocess; the sweep continues. Returns None on
timeout/failure (the caller drops that film from the average)."""
with tempfile.NamedTemporaryFile("r", suffix=".json", delete=False) as tf:
out = tf.name
argv = [sys.executable, REPLAY_CLI, "--dump", dump, "--gallery", gallery,
"--out", out, "--build-dir", build_dir]
for k, v in cfg.items():
if isinstance(v, bool): # store_true flags: pass the flag, not a value
if v:
argv.append(f"--{k.replace('_', '-')}")
else:
argv += [f"--{k.replace('_', '-')}", str(v)]
try:
subprocess.run(argv, timeout=_REPLAY_TIMEOUT, capture_output=True, check=True)
return _json.loads(Path(out).read_text())
except (subprocess.TimeoutExpired, subprocess.CalledProcessError,
FileNotFoundError, ValueError) as e:
print(f"[opt] replay failed for {Path(dump).name}: {type(e).__name__}",
file=sys.stderr)
return None
finally:
try:
Path(out).unlink()
except OSError:
pass
def evaluate(cfg, films, build_dir, step=None):
"""Objective = MACRO-mean over films of each film's duration-weighted per-scene F1.
Each film's replay runs in a subprocess (timeout-guarded) to survive the
intermittent ROCm teardown deadlock. A film whose replay times out is dropped
from the average rather than hanging the whole sweep.
UNIFORM PER-SECOND scoring (second_score.py): every second of the film is sampled;
GT(t) = the cast of the X-Ray scene containing t, Pred(t) = actors whose presence
window covers t. Counts instances — TPI / FPI / FN — with FPI weighted 10× when the
named actor isn't in the film's cast at all (a real misID vs a timing slip). FN
counts only gallery-known actors (fair recall). Reports agreement_rate = mean
per-second Jaccard (the "% of on-screen actors we agree with X-Ray about, over
time"). Objective = macro-mean across films of the per-second weighted F1.
expand_gallery: controlled by env SAE_EXPAND (default on). Set SAE_EXPAND=0 to run
the no-expansion arm — the overnight matrix tests both to quantify what expansion buys.
The 9 films' replays run CONCURRENTLY (REPLAY_WORKERS) — each is an isolated
subprocess, so parallelism is safe (a wedged one only kills itself)."""
if os.environ.get("SAE_EXPAND", "1") == "1":
cfg = {**cfg, "expand_gallery": True}
def _one(film):
pj = _replay_subprocess(film["dump"], film.get("gallery"), cfg, build_dir)
if pj is None:
return None
return score_seconds(pj, film["xray"],
gallery_keys=_gallery_keys(film.get("gallery")))
with ThreadPoolExecutor(max_workers=REPLAY_WORKERS) as ex:
per_film = [m for m in ex.map(_one, films) if m is not None]
n = len(per_film)
if not n:
return {"precision": 0.0, "recall": 0.0, "f1": 0.0, "agreement": 0.0,
"TPI": 0, "FPI": 0, "FPI_misid": 0, "FN": 0}
return {"precision": sum(m["precision"] for m in per_film) / n,
"recall": sum(m["recall"] for m in per_film) / n,
"f1": sum(m["f1"] for m in per_film) / n,
"agreement": sum(m["agreement_rate"] for m in per_film) / n,
"TPI": sum(m["TPI"] for m in per_film),
"FPI": sum(m["FPI"] for m in per_film),
"FPI_misid": sum(m["FPI_misid"] for m in per_film),
"FN": sum(m["FN"] for m in per_film)}
def main():
p = argparse.ArgumentParser(description=__doc__,
formatter_class=argparse.RawDescriptionHelpFormatter)
p.add_argument("--manifest", required=True)
p.add_argument("--gallery", help="default gallery if not per-film")
p.add_argument("--params", nargs="+", required=True,
help="knob:lo:hi (e.g. prob_threshold:0.5:0.999). Int knobs kept float, rounded in cfg.")
p.add_argument("--build-dir", default=str(REPO / "build"))
p.add_argument("--step", type=float, default=5.0)
p.add_argument("--popsize", type=int, default=20)
p.add_argument("--maxiter", type=int, default=25)
p.add_argument("--seed", type=int, default=0)
p.add_argument("--trajectory", help="write every evaluation here (JSON lines)")
p.add_argument("--out", help="write best config + metrics")
args = p.parse_args()
films = json.loads(Path(args.manifest).read_text())
for f in films:
f.setdefault("gallery", args.gallery)
if not Path(f["dump"]).exists():
sys.exit(f"[opt] missing dump for {f['name']}: {f['dump']}")
names, bounds = [], []
int_knobs = {"track_max_frames_missing", "cut_inactive_max_frames"}
for spec in args.params:
k, lo, hi = spec.split(":")
names.append(k); bounds.append((float(lo), float(hi)))
print(f"[opt] DE over {names} bounds={bounds}", file=sys.stderr)
print(f"[opt] {len(films)} films, popsize={args.popsize}, maxiter={args.maxiter}", file=sys.stderr)
traj = []
evals = [0]
t0 = time.time()
traj_lock = threading.Lock()
def vec_to_cfg(x):
cfg = {}
for k, v in zip(names, x):
cfg[k] = int(round(v)) if k in int_knobs else float(v)
return cfg
def objective(x):
cfg = vec_to_cfg(x)
m = evaluate(cfg, films, args.build_dir, args.step)
with traj_lock:
evals[0] += 1
rec = {"eval": evals[0], "config": cfg, **m, "t": round(time.time() - t0, 1)}
traj.append(rec)
print(f"[opt] eval {evals[0]:3d} thr={cfg['prob_threshold']:.2f} "
f"ann={cfg['anneal_sec']:.0f} ext={cfg['extinction_sec']:.1f} → "
f"F1={m['f1']*100:.1f}% P={m['precision']*100:.1f}% R={m['recall']*100:.1f}% "
f"agree={m.get('agreement', 0)*100:.1f}% misID={m.get('FPI_misid', 0)}",
file=sys.stderr)
if args.trajectory:
with open(args.trajectory, "a") as tf:
tf.write(json.dumps(rec) + "\n")
return -m["f1"]
de_kwargs = dict(
popsize=args.popsize, maxiter=args.maxiter,
seed=args.seed, polish=False, tol=1e-4, mutation=(0.5, 1.0), recombination=0.7,
init="sobol")
if DE_WORKERS > 1:
pool = ThreadPoolExecutor(max_workers=DE_WORKERS)
de_kwargs["workers"] = pool.map
result = differential_evolution(objective, bounds, **de_kwargs)
best_cfg = vec_to_cfg(result.x)
best = evaluate(best_cfg, films, args.build_dir, args.step)
print("\n══ DE optimum (by F1) ═══════════════════════════")
print(f" config : {best_cfg}")
print(f" F1 : {best['f1']*100:.2f}%")
print(f" precision: {best['precision']*100:.2f}% recall: {best['recall']*100:.2f}%")
print(f" TP/FP/FN: {best['TP']}/{best['FP']}/{best['FN']}")
print(f" evaluations: {evals[0]} time: {time.time()-t0:.0f}s")
# Also surface the highest-precision config seen (the ship-safe operating point).
if traj:
hp = max(traj, key=lambda r: (r["precision"], r["recall"]))
print("\n── highest-precision config seen (ship-safe) ──")
print(f" config : {hp['config']}")
print(f" P={hp['precision']*100:.2f}% R={hp['recall']*100:.2f}% F1={hp['f1']*100:.2f}%")
if args.out:
Path(args.out).write_text(json.dumps(
{"best_by_f1": {"config": best_cfg, **best}, "n_evals": evals[0]}, indent=2))
if __name__ == "__main__":
main()