adds anchor grid
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@@ -9,4 +9,24 @@ def get_anchor_grid(
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anchor_widths: Sequence[float],
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aspect_ratios: Sequence[float],
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) -> np.ndarray:
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raise NotImplementedError()
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anchor_grid = np.empty(
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[len(width), len(ratio), num_rows, num_cols, 4], dtype=int)
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for width_idx, width in enumerate(anchor_widths):
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for ratio_idx, ratio in enumerate(aspect_ratios):
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for row in range(num_rows):
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for col in range(num_cols):
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anchor_point = (
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col * scale_factor + scale_factor/2, row * scale_factor + scale_factor / 2)
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anchor_grid[width_idx, ratio_idx, row, col] = get_box(
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width, ratio, anchor_point)
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return anchor_grid
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def get_box(width: float, ratio: float, anchor_point: tuple[float, float]) -> np.ndarray:
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box = np.empty(4)
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box[0] = anchor_point[0] - (width / 2)
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box[1] = anchor_point[1] - (width * ratio / 2)
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box[2] = anchor_point[0] + (width / 2)
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box[3] = anchor_point[1] + (width * ratio / 2)
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return box
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@@ -5,10 +5,34 @@ from ..a3.annotation import AnnotationRect
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def iou(rect1: AnnotationRect, rect2: AnnotationRect) -> float:
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raise NotImplementedError()
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x_left = max(rect1.x1, rect2.x1)
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y_top = max(rect1.y1, rect2.y1)
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x_right = min(rect1.x2, rect2.x2)
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y_bottom = min(rect1.y2, rect2.y2)
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# Returns 0 if no overlap
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if x_right <= x_left or y_bottom <= y_top:
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return 0.0
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intersection_area = (x_right - x_left) * (y_bottom - y_top)
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rect1_area = rect1.area()
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rect2_area = rect2.area()
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union_area = rect1_area + rect2_area - intersection_area
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return intersection_area / union_area
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def get_label_grid(
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anchor_grid: np.ndarray, gts: Sequence[AnnotationRect], min_iou: float
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) -> tuple[np.ndarray, ...]:
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raise NotImplementedError()
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label_grid = np.empty(anchor_grid.shape[:-1], dtype=bool)
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for (width, ratio, row, col), item in np.ndenumerate(anchor_grid):
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for gt in gts:
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iou = iou(item, gt)
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label_grid[width, ratio, row, col] = False
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if (iou >= min_iou):
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label_grid[width, ratio, row, col] = True
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break
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return label_grid
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