xy and wh losses respectively merged
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@ -231,18 +231,16 @@ def build_targets(target, anchor_wh, nA, nC, nG):
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continue
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t = target[b]
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# Convert to position relative to box
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gx, gy, gw, gh = t[:, 1] * nG, t[:, 2] * nG, t[:, 3] * nG, t[:, 4] * nG
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gxy, gwh = t[:, 1:3] * nG, t[:, 3:5] * nG
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# Get grid box indices and prevent overflows (i.e. 13.01 on 13 anchors)
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gi = torch.clamp(gx.long(), min=0, max=nG - 1)
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gj = torch.clamp(gy.long(), min=0, max=nG - 1)
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gi, gj = torch.clamp(gxy.long(), min=0, max=nG - 1).t()
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# iou of targets-anchors (using wh only)
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box1 = t[:, 3:5] * nG
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box1 = gwh
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box2 = anchor_wh.unsqueeze(1)
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inter_area = torch.min(box1, box2).prod(2)
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iou = inter_area / (gw * gh + box2.prod(2) - inter_area + 1e-16)
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iou = inter_area / (box1.prod(1) + box2.prod(2) - inter_area + 1e-16)
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# Select best iou_pred and anchor
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iou_best, a = iou.max(0) # best anchor [0-2] for each target
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@ -269,17 +267,14 @@ def build_targets(target, anchor_wh, nA, nC, nG):
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if iou_best < 0.10:
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continue
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tc, gx, gy, gwh = t[:, 0].long(), t[:, 1] * nG, t[:, 2] * nG, t[:, 3:5] * nG
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tc, gxy, gwh = t[:, 0].long(), t[:, 1:3] * nG, t[:, 3:5] * nG
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# Coordinates
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txy[b, a, gj, gi, 0] = gx - gi.float()
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txy[b, a, gj, gi, 1] = gy - gj.float()
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# XY coordinates
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txy[b, a, gj, gi] = gxy - gxy.floor()
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# Width and height (yolo method)
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twh[b, a, gj, gi] = torch.log(gwh / anchor_wh[a])
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# Width and height (power method)
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# twh[b, a, gj, gi] = torch.sqrt(gwh / anchor_wh[a]) / 2
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# Width and height
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twh[b, a, gj, gi] = torch.log(gwh / anchor_wh[a]) # yolo method
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# twh[b, a, gj, gi] = torch.sqrt(gwh / anchor_wh[a]) / 2 # power method
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# One-hot encoding of label
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tcls[b, a, gj, gi, tc] = 1
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