updates
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@ -313,15 +313,12 @@ def box_iou(boxes1, boxes2):
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return iou
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def wh_iou(box1, box2):
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# Returns the IoU of wh1 to wh2. wh1 is 2, wh2 is 2xn
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w1, h1 = box1[0], box1[1]
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w2, h2 = box2[0], box2[1]
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# Intersection area
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inter = torch.min(w1, w2) * torch.min(h1, h2)
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return inter / (w1 * h1 + w2 * h2 - inter) # iou = inter / (area1 + area2 - inter)
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def wh_iou(wh1, wh2):
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# Returns the nxm IoU matrix. wh1 is nx2, wh2 is mx2
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wh1 = wh1[:, None] # [N,1,2]
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wh2 = wh2[None] # [1,M,2]
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inter = torch.min(wh1, wh2).prod(2) # [N,M]
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return inter / (wh1.prod(2) + wh2.prod(2) - inter) # iou = inter / (area1 + area2 - inter)
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class FocalLoss(nn.Module):
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@ -445,9 +442,8 @@ def build_targets(model, targets):
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# iou of targets-anchors
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t, a = targets, []
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gwh = t[:, 4:6] * ng
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gwht = gwh.t()
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if nt:
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iou = torch.stack([wh_iou(x, gwht) for x in anchor_vec], 0)
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iou = wh_iou(anchor_vec, gwh)
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if use_all_anchors:
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na = len(anchor_vec) # number of anchors
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