Build and push server image / build-and-push (push) Failing after 10s
_face_aware_crop_box() previously always centered the crop on the union of all detected faces' centroid, even when the plain center-crop already kept every face fully on screen -- unnecessarily moving a composition that didn't need fixing. Now starts from the plain center-crop and only shifts it the minimum amount needed to bring an otherwise-cropped-out face back into frame; already-fine framing is left untouched (falls back to centering on the faces' midpoint only if they're spread too wide for any single shift to contain them all, which is unchanged from before). Verified: a face safely inside the plain center-crop now produces byte- identical output to the no-shift case (previously it still would have been re-centered); an edge face gets a 100px shift instead of the 1050px a full re-center would have applied. Re-ran against the real 4-face test photo from earlier -- all four were already fully visible, so the refined box now exactly matches the plain center-crop instead of shifting unnecessarily.
128 lines
4.6 KiB
Python
128 lines
4.6 KiB
Python
"""Resize, quantize, and pack a photo into the panel's raw 4bpp format."""
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from __future__ import annotations
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from PIL import Image, ImageOps
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EPD_WIDTH = 800
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EPD_HEIGHT = 480
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# Approximate sRGB for each of the panel's 6 ink colors. These are
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# reasonable placeholders, not measured values -- Waveshare doesn't publish
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# exact color primaries for this panel. Tune them once you can compare a
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# rendered test image against the real panel.
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PALETTE_RGB = [
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(0, 0, 0), # BLACK
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(255, 255, 255), # WHITE
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(255, 219, 0), # YELLOW
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(207, 0, 15), # RED
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(0, 39, 133), # BLUE
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(0, 133, 55), # GREEN
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]
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# The panel's actual 4-bit color codes (see firmware/components/epd7in3e),
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# in the same order as PALETTE_RGB. 0x4 is intentionally unused upstream.
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PANEL_CODES = [0x0, 0x1, 0x2, 0x3, 0x5, 0x6]
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def _build_palette_image() -> Image.Image:
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pal_img = Image.new("P", (1, 1))
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pal_img.putpalette([channel for rgb in PALETTE_RGB for channel in rgb])
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return pal_img
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_PALETTE_IMAGE = _build_palette_image()
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def _face_aware_crop_box(
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img_width: int, img_height: int, target_width: int, target_height: int, faces: list[dict]
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) -> tuple[int, int, int, int]:
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"""Largest crop window matching target_width:target_height that fits
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inside the source image. Starts from the plain center crop and only
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shifts it the minimum amount needed to bring any faces that would
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otherwise be cut off back on screen -- an already-fine composition
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(faces already fully inside the center crop) is left untouched rather
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than re-centered on the faces. If the faces themselves span wider than
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the crop window allows, centers on their midpoint as best-effort,
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since there's no shift that fits them all regardless.
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Each face's box is given relative to its own imageWidth/imageHeight
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(the resolution Immich ran detection on), which may differ from the
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downloaded preview's resolution passed in here, so each box is scaled
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into img_width/img_height space before use.
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"""
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min_x = min_y = float("inf")
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max_x = max_y = float("-inf")
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for face in faces:
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face_w = face.get("imageWidth") or img_width
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face_h = face.get("imageHeight") or img_height
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scale_x = img_width / face_w
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scale_y = img_height / face_h
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min_x = min(min_x, face["boundingBoxX1"] * scale_x)
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max_x = max(max_x, face["boundingBoxX2"] * scale_x)
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min_y = min(min_y, face["boundingBoxY1"] * scale_y)
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max_y = max(max_y, face["boundingBoxY2"] * scale_y)
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target_ratio = target_width / target_height
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if img_width / img_height > target_ratio:
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crop_h = img_height
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crop_w = int(crop_h * target_ratio)
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else:
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crop_w = img_width
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crop_h = int(crop_w / target_ratio)
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left = (img_width - crop_w) / 2
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top = (img_height - crop_h) / 2
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if max_x - min_x <= crop_w:
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if min_x < left:
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left = min_x
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elif max_x > left + crop_w:
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left = max_x - crop_w
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else:
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left = (min_x + max_x) / 2 - crop_w / 2
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if max_y - min_y <= crop_h:
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if min_y < top:
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top = min_y
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elif max_y > top + crop_h:
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top = max_y - crop_h
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else:
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top = (min_y + max_y) / 2 - crop_h / 2
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left = max(0, min(left, img_width - crop_w))
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top = max(0, min(top, img_height - crop_h))
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return (int(left), int(top), int(left) + crop_w, int(top) + crop_h)
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def render_frame(source: Image.Image, faces: list[dict] | None = None) -> bytes:
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"""Fits `source` to the panel's resolution, quantizes it to the 6-color
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palette with Floyd-Steinberg dithering, and packs 2 pixels/byte the way
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epd7in3e.c expects. Always returns exactly EPD_WIDTH*EPD_HEIGHT/2 bytes.
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If `faces` (from ImmichClient.get_asset_faces) is non-empty, crops
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toward keeping them on screen instead of a plain center-crop.
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"""
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fitted = ImageOps.exif_transpose(source.convert("RGB"))
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if faces:
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box = _face_aware_crop_box(fitted.width, fitted.height, EPD_WIDTH, EPD_HEIGHT, faces)
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fitted = fitted.crop(box).resize((EPD_WIDTH, EPD_HEIGHT), Image.LANCZOS)
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else:
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fitted = ImageOps.fit(fitted, (EPD_WIDTH, EPD_HEIGHT), method=Image.LANCZOS)
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quantized = fitted.quantize(palette=_PALETTE_IMAGE, dither=Image.Dither.FLOYDSTEINBERG)
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pixels = quantized.load()
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out = bytearray(EPD_WIDTH * EPD_HEIGHT // 2)
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i = 0
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for y in range(EPD_HEIGHT):
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for x in range(0, EPD_WIDTH, 2):
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left = PANEL_CODES[pixels[x, y]]
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right = PANEL_CODES[pixels[x + 1, y]]
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out[i] = (left << 4) | right
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i += 1
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return bytes(out)
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