Add smoke-test script for cloud-veil composite
test_moon_composite.py uses the existing repo sample frames (21-07-00.jpg east frame with thin cloud cover + full_moon_closeup.jpg as NASA render stand-in) to produce test_composite_out.jpg without needing a live NASA API call or moon detection run. Run: python3 test_moon_composite.py https://claude.ai/code/session_01HkTxpNSTWtViZzxbrbKytR
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#!/usr/bin/env python3
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"""test_moon_composite.py — smoke-test the cloud-veil composite using local files.
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Uses the sample east frame (21-07-00.jpg) and the reference moon photo
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(full_moon_closeup.jpg) already in the repo to produce a composite without
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needing a live NASA API call or actual moon detection.
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Run from the sky-cam directory:
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python3 test_moon_composite.py
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Output: test_composite_out.jpg in the same directory.
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The east frame (2026-04-29 21:06:45) shows the moon with visible thin cloud
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cover across the sky, so the cloud-veil layer should be clearly active.
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"""
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import pathlib
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import sys
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from datetime import datetime, timezone
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HERE = pathlib.Path(__file__).resolve().parent
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sys.path.insert(0, str(HERE))
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EAST_FRAME = HERE / "21-07-00.jpg"
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NASA_RENDER = HERE / "full_moon_closeup.jpg"
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OUT_PATH = HERE / "test_composite_out.jpg"
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# Approximate moon centroid in the east frame, estimated visually.
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# The moon appears at roughly 68% from left, 31% from top of the 1920×1080 frame.
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# moon_detect.py would compute these exactly at runtime.
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MOON_CX_FRAC = 0.68
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MOON_CY_FRAC = 0.31
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# Apparent diameter in source pixels — roughly 38 px for a typical wide-field
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# IP camera at full-moon. Adjust if your camera gives a larger blob.
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MOON_DIAM_PX = 38
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def _make_fake_detection(frame_path):
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"""Return a detection-like object with centroid_xy and diameter_px."""
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from PIL import Image
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im = Image.open(frame_path)
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w, h = im.size
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cx = w * MOON_CX_FRAC
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cy = h * MOON_CY_FRAC
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print(f" frame size : {w}×{h}")
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print(f" moon centroid: ({cx:.0f}, {cy:.0f})")
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print(f" moon diameter: {MOON_DIAM_PX} px")
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class _Det:
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centroid_xy = (cx, cy)
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diameter_px = MOON_DIAM_PX
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quality = 0.82 # plausible for a hazy but visible moon
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return _Det()
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def main():
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for p in (EAST_FRAME, NASA_RENDER):
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if not p.exists():
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print(f"ERROR: missing {p}", file=sys.stderr)
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sys.exit(1)
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print("=== moon composite smoke-test ===")
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print(f"east frame : {EAST_FRAME.name}")
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print(f"NASA render : {NASA_RENDER.name}")
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print(f"output : {OUT_PATH.name}")
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print()
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det = _make_fake_detection(EAST_FRAME)
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# Timestamp matching the east frame filename
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when_utc = datetime(2026, 4, 29, 21, 7, 0, tzinfo=timezone.utc)
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from moon_composite import render_phase_closeup
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caption = (
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"Full Moon — April 2026 — "
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"sky-cam east witnessed at 2026-04-29 21:07:00 UTC "
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"(+7 min from exact full) — render: NASA SVS Dial-a-Moon [SIMULATED]"
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)
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print("rendering composite …")
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render_phase_closeup(
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nasa_render_path=str(NASA_RENDER),
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out_path=str(OUT_PATH),
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output_size=(1920, 1080),
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moon_height_pct=0.92,
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caption=caption,
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east_frame_path=str(EAST_FRAME),
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east_detection=det,
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cloud_overlay_enabled=True,
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cloud_overlay_max_opacity=0.40,
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cloud_overlay_blur=0, # auto
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)
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print(f"\ndone → {OUT_PATH}")
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print()
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print("What you should see:")
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print(" • Full moon disk filling ~92% of the 1920×1080 frame")
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print(" • Thin grey-blue cloud veil over the composite — sourced from")
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print(" the sky ring around the moon in 21-07-00.jpg, blurred to haze")
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print(" • Moon disk re-pasted sharp on top of the veil layer")
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print(" • Caption at bottom-left with phase / date / witness text")
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print()
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print("Sky brightness in the annular ring drives veil opacity.")
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print("The hazy sky visible in 21-07-00.jpg should produce a visible but")
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print("partial veil (estimated ~20–30% opacity for that frame).")
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if __name__ == "__main__":
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main()
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