Refactor/parallel and dedup #1

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tka merged 10 commits from refactor/parallel-and-dedup into main 2026-07-31 15:20:33 -05:00
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#!/usr/bin/env python3
"""Golden-output equivalence harness for the sras-viewer refactor.
Computes a battery of DC / FFT / alignment outputs and prints a stable hash
for each. Run it on the pre-refactor commit to capture a baseline, then again
after the refactor and diff the two reports — every line must match.
Imports work against both the pre-refactor monolith (`sras_viewer`) and the
post-refactor split (`sras_format` + `sras_compute`), so the *same* script
produces both sides of the comparison.
Hashes canonicalise to native little-endian float64 before hashing, so a
deliberate dtype/byte-order change that preserves values does not show up as
a false mismatch.
Usage:
python tools/check_equivalence.py --out baseline.txt
python tools/check_equivalence.py --out after.txt --real /path/to/big.sras
diff baseline.txt after.txt
"""
import argparse
import copy
import hashlib
import sys
from pathlib import Path
import numpy as np
sys.path.insert(0, str(Path(__file__).resolve().parent.parent))
# --- Import shim: split modules if present, else the monolith --------------
try:
from sras_format import SrasFile, CH1_IDX, CH3_IDX, CH4_IDX, adc_to_mv
import sras_compute as C
_LAYOUT = "split"
except ImportError:
import sras_viewer as _V
from sras_viewer import SrasFile, CH1_IDX, CH3_IDX, CH4_IDX, adc_to_mv
C = _V
_LAYOUT = "monolith"
compute_dc_image = C.compute_dc_image
compute_rf_image = C.compute_rf_image
compute_alignment = C._compute_angle_alignment
apply_alignment = C.apply_alignment
import tools.make_test_sras as gen # noqa: E402
def h(arr) -> str:
"""Stable hash of an array's *values*, independent of dtype/byte order."""
a = np.ascontiguousarray(np.asarray(arr, dtype=np.float64))
return hashlib.sha256(a.tobytes()).hexdigest()[:16]
def row_slice(sras: SrasFile, angle_idx: int, n_rows: int) -> SrasFile:
"""A shallow view of *sras* restricted to the first *n_rows* rows of
*angle_idx*, so the huge real file can be exercised in seconds."""
view = copy.copy(sras)
n = min(int(n_rows), int(sras.n_rows[angle_idx]))
view.n_rows = np.array(sras.n_rows, copy=True)
view.n_rows[angle_idx] = n
view.data = list(sras.data)
view.data[angle_idx] = sras.data[angle_idx][:n]
view._y_pos_per_angle = list(sras._y_pos_per_angle)
view._y_pos_per_angle[angle_idx] = sras._y_pos_per_angle[angle_idx][:n]
return view
def report(lines: list[str], label: str, value: str):
lines.append(f"{label:<58} {value}")
def check_file(path: Path, lines: list[str], tag: str,
angles: list[int], n_rows: int | None):
sras = SrasFile(str(path))
report(lines, f"[{tag}] version/n_angles",
f"v{sras.version} n={sras.n_angles}")
report(lines, f"[{tag}] geometry",
f"rows={list(map(int, sras.n_rows))} frames={list(map(int, sras.n_frames))}")
report(lines, f"[{tag}] calibration",
" ".join(f"{m:.6g}/{o:.6g}/{z:.6g}" for m, o, z in
zip(sras.ch_ymult_mv, sras.ch_yoff_adc, sras.ch_yzero_mv)))
report(lines, f"[{tag}] angles_deg", h(sras.angles_deg))
if sras.background is not None:
report(lines, f"[{tag}] background", h(sras.background))
for a in angles:
if a >= sras.n_angles:
continue
s = row_slice(sras, a, n_rows) if n_rows else sras
report(lines, f"[{tag}] x_axis_mm(a={a})", h(s.x_axis_mm(a)))
report(lines, f"[{tag}] y_positions_mm(a={a})", h(s.y_positions_mm(a)))
for ch, name in ((CH3_IDX, "CH3"), (CH4_IDX, "CH4")):
raw = compute_dc_image(s, a, ch)
report(lines, f"[{tag}] dc_adc(a={a},{name})", h(raw))
mv = adc_to_mv(raw, s.ch_ymult_mv[ch], s.ch_yoff_adc[ch],
s.ch_yzero_mv[ch])
report(lines, f"[{tag}] dc_mv(a={a},{name})", h(mv))
dc4 = adc_to_mv(compute_dc_image(s, a, CH4_IDX),
s.ch_ymult_mv[CH4_IDX], s.ch_yoff_adc[CH4_IDX],
s.ch_yzero_mv[CH4_IDX])
thresholds = [-1e9, float(np.median(dc4))]
for bg in (False, True):
if bg and s.background is None:
continue
for pad in (1, 2):
n_fft = s.samples_per_frame * pad if pad > 1 else None
for ti, thr in enumerate(thresholds):
img = compute_rf_image(s, a, dc_threshold_mv=thr,
apply_bg_sub=bg, n_fft=n_fft)
report(lines,
f"[{tag}] rf(a={a},bg={int(bg)},pad={pad},thr{ti})",
h(img))
# dc4_mv passthrough must give the identical result
img2 = compute_rf_image(s, a, dc_threshold_mv=thr,
apply_bg_sub=bg, n_fft=n_fft,
dc4_mv=dc4)
same = "SAME" if h(img) == h(img2) else "DIFFER"
report(lines,
f"[{tag}] rf-dc4arg(a={a},bg={int(bg)},pad={pad},thr{ti})",
same)
def check_alignment(path: Path, lines: list[str], tag: str):
sras = SrasFile(str(path))
if sras.n_angles < 2:
return
dc4 = adc_to_mv(compute_dc_image(sras, 0, CH4_IDX),
sras.ch_ymult_mv[CH4_IDX], sras.ch_yoff_adc[CH4_IDX],
sras.ch_yzero_mv[CH4_IDX])
thr = float(np.median(dc4))
res = compute_alignment(sras, 0, thr)
report(lines, f"[{tag}] align canvas_shape", str(res.canvas_shape))
report(lines, f"[{tag}] align canvas_origin",
f"{res.canvas_origin_mm[0]:.9g},{res.canvas_origin_mm[1]:.9g}")
report(lines, f"[{tag}] align canvas_pitch",
f"{res.canvas_dx_mm:.9g},{res.canvas_dy_mm:.9g}")
for a in sorted(res.per_angle):
t = res.per_angle[a]
report(lines, f"[{tag}] align shift_mm(a={a})",
f"{t.shift_mm[0]:.9g},{t.shift_mm[1]:.9g}")
report(lines, f"[{tag}] align rot(a={a})", f"{t.rotation_deg:.9g}")
report(lines, f"[{tag}] align matrix(a={a})", h(t.matrix))
report(lines, f"[{tag}] align offset(a={a})", h(t.offset))
img = compute_dc_image(sras, a, CH4_IDX)
report(lines, f"[{tag}] align resampled(a={a})",
h(apply_alignment(res, a, img)))
def main():
p = argparse.ArgumentParser(description=__doc__)
p.add_argument("--out", required=True, help="report file to write")
p.add_argument("--real", help="optional path to a real .sras file")
p.add_argument("--real-rows", type=int, default=2,
help="rows per angle to sample from the real file")
p.add_argument("--real-angles", type=int, default=2,
help="how many angles to sample from the real file")
p.add_argument("--scratch", default=".",
help="directory for generated synthetic files")
args = p.parse_args()
lines = [f"# layout: {_LAYOUT}", f"# numpy: {np.__version__}"]
scratch = Path(args.scratch)
synth = scratch / "equiv_synth.sras"
gen.write(synth, n_angles=4, seed=0, samples_per_frame=64)
check_file(synth, lines, "synth", angles=[0, 1, 2, 3], n_rows=None)
check_alignment(synth, lines, "synth")
# A second synthetic with an odd sample count, to catch off-by-one in
# rfft bin handling and chunk-boundary arithmetic.
synth_odd = scratch / "equiv_synth_odd.sras"
gen.write(synth_odd, n_angles=2, seed=7, samples_per_frame=37)
check_file(synth_odd, lines, "odd", angles=[0, 1], n_rows=None)
if args.real:
real = Path(args.real)
if real.exists():
check_file(real, lines, "real",
angles=list(range(args.real_angles)),
n_rows=args.real_rows)
else:
lines.append(f"# real file not found: {real}")
Path(args.out).write_text("\n".join(lines) + "\n")
print("\n".join(lines))
print(f"\nWrote {args.out} ({len(lines)} lines)")
if __name__ == "__main__":
main()
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#!/usr/bin/env python3
"""Generate small synthetic .sras files for testing.
Writes v6 files (per-angle geometry, ragged waveform blocks) matching
scan_format.md, with deterministic pseudo-random waveform content so a test
can compute expected DC/FFT images independently of the reader under test.
Usage:
python tools/make_test_sras.py out.sras [--angles 3] [--seed 0]
"""
import argparse
import struct
from pathlib import Path
import numpy as np
HDR_FMT_V6 = ">4sBHfffffffIdBB"
GEO_FMT_V6 = ">ffIH"
# Per-angle (n_rows, n_frames) — deliberately different per angle so ragged
# geometry handling is actually exercised.
_GEOMETRY = [(5, 7), (4, 11), (6, 9), (3, 13), (7, 6)]
_SAMPLE_RATE_HZ = 6.25e9
_VELOCITY_MM_S = 20.0
_LASER_FREQ_HZ = 1000.0
_ROW_SPACING_MM = 0.05
def _preamble(ymult_v: float, yoff_adc: float, yzero_v: float) -> bytes:
"""A Tektronix WFMOutpre string in verbose (keyword) form — the reader
pulls YMULT/YOFF/YZERO out of it by name, so the keywords must be
present literally. YMULT/YZERO are in volts, as the scope reports them."""
return (
":WFMOUTPRE:BYT_NR 1;BIT_NR 8;ENCDG BIN;BN_FMT RI;BYT_OR MSB;"
'WFID "Ch1, DC coupling";NR_PT 2500;PT_FMT Y;'
"XINCR 1.6000E-10;XZERO 0.0E0;XUNIT \"s\";"
f"YMULT {ymult_v:.6E};YOFF {yoff_adc:.6E};YZERO {yzero_v:.6E};"
'YUNIT "V"'
).encode("utf-8")
def build(n_angles: int, seed: int, samples_per_frame: int) -> tuple[bytes, dict]:
rng = np.random.default_rng(seed)
geom = [_GEOMETRY[a % len(_GEOMETRY)] for a in range(n_angles)]
n_ch = 3
bps = 1
angles_deg = np.linspace(0.0, 60.0, n_angles, dtype=np.float32)
# Distinct calibration per channel so a swapped-channel bug is visible.
cal = [
(1.5625e-3, -87.04, 0.0),
(2.0000e-3, -60.00, 1.0e-3),
(2.5000e-3, -40.00, -2.0e-3),
]
out = bytearray()
out += struct.pack(
HDR_FMT_V6, b"SRAS", 6, n_angles,
0.0, 0.0, 1.0, 1.0, _ROW_SPACING_MM,
_VELOCITY_MM_S, _LASER_FREQ_HZ,
samples_per_frame, _SAMPLE_RATE_HZ, bps, n_ch,
)
out += angles_deg.astype(">f4").tobytes()
x_starts = []
for a, (n_rows, n_frames) in enumerate(geom):
x_start = -0.5 + 0.1 * a
x_starts.append(x_start)
out += struct.pack(GEO_FMT_V6, x_start, 1.0, n_frames, n_rows)
y_positions = []
for a, (n_rows, _) in enumerate(geom):
y = (0.2 * a + np.arange(n_rows) * _ROW_SPACING_MM).astype(np.float32)
y_positions.append(y)
out += y.astype(">f4").tobytes()
for ymult_v, yoff, yzero_v in cal:
p = _preamble(ymult_v, yoff, yzero_v)
out += struct.pack(">H", len(p)) + p
background = rng.integers(-8, 9, size=samples_per_frame, dtype=np.int8)
out += struct.pack(">I", samples_per_frame) + background.tobytes()
# Waveform data. CH1 gets a sinusoid at a per-pixel frequency so the FFT
# peak is predictable; CH3/CH4 get per-pixel DC levels so the mean is too.
t = np.arange(samples_per_frame)
waveforms = []
for a, (n_rows, n_frames) in enumerate(geom):
block = np.empty((n_rows, n_ch, n_frames, samples_per_frame), dtype=np.int8)
for r in range(n_rows):
for f in range(n_frames):
bin_idx = 3 + ((a + r + f) % 17)
phase = 2 * np.pi * bin_idx * t / samples_per_frame
block[r, 0, f] = np.clip(
np.round(60 * np.sin(phase)), -128, 127).astype(np.int8)
block[r, 1, f] = np.int8((a * 7 + r * 3 + f) % 100 - 50)
block[r, 2, f] = np.int8((a * 5 + r * 11 + f * 2) % 120 - 60)
waveforms.append(block)
out += block.tobytes()
meta = {
"n_angles": n_angles,
"geometry": geom,
"angles_deg": angles_deg,
"x_starts": x_starts,
"y_positions": y_positions,
"cal": cal,
"background": background,
"waveforms": waveforms,
"samples_per_frame": samples_per_frame,
"sample_rate_hz": _SAMPLE_RATE_HZ,
}
return bytes(out), meta
def write(path: Path, n_angles: int = 3, seed: int = 0,
samples_per_frame: int = 64) -> dict:
payload, meta = build(n_angles, seed, samples_per_frame)
path.write_bytes(payload)
return meta
def main():
p = argparse.ArgumentParser(description=__doc__)
p.add_argument("output")
p.add_argument("--angles", type=int, default=3)
p.add_argument("--seed", type=int, default=0)
p.add_argument("--spf", type=int, default=64, help="samples per frame")
args = p.parse_args()
out = Path(args.output)
meta = write(out, args.angles, args.seed, args.spf)
print(f"Wrote {out} ({out.stat().st_size:,} bytes)")
print(f" angles : {meta['n_angles']}")
print(f" geometry : {meta['geometry']}")
print(f" spf : {meta['samples_per_frame']}")
if __name__ == "__main__":
main()