multi-gpu test bug fix #15
parent
a2336088f0
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dbdee3a4a3
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@ -51,7 +51,7 @@ def detect(save_img=False):
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dataset = LoadImages(source, img_size=imgsz)
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# Get names and colors
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names = model.module.names if hasattr(model, 'module') else model.names
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names = model.names if hasattr(model, 'names') else model.modules.names
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colors = [[random.randint(0, 255) for _ in range(3)] for _ in range(len(names))]
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# Run inference
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@ -27,11 +27,11 @@ class Detect(nn.Module):
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x[i] = x[i].view(bs, self.na, self.no, ny, nx).permute(0, 1, 3, 4, 2).contiguous()
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if not self.training: # inference
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if (self.grid[i].shape[2:4] != x[i].shape[2:4]) | (self.grid[i].device != x[i].device):
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if self.grid[i].shape[2:4] != x[i].shape[2:4]:
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self.grid[i] = self._make_grid(nx, ny).to(x[i].device)
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y = x[i].sigmoid()
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y[..., 0:2] = (y[..., 0:2] * 2. - 0.5 + self.grid[i]) * self.stride[i] # xy
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y[..., 0:2] = (y[..., 0:2] * 2. - 0.5 + self.grid[i].to(x[i].device)) * self.stride[i] # xy
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y[..., 2:4] = (y[..., 2:4] * 2) ** 2 * self.anchor_grid[i] # wh
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z.append(y.view(bs, -1, self.no))
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2
test.py
2
test.py
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@ -75,7 +75,7 @@ def test(data,
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seen = 0
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model.eval()
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_ = model(torch.zeros((1, 3, imgsz, imgsz), device=device)) if device.type != 'cpu' else None # run once
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names = model.module.names if hasattr(model, 'module') else model.names
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names = model.names if hasattr(model, 'names') else model.module.names
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coco91class = coco80_to_coco91_class()
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s = ('%20s' + '%12s' * 6) % ('Class', 'Images', 'Targets', 'P', 'R', 'mAP@.5', 'mAP@.5:.95')
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p, r, f1, mp, mr, map50, map, t0, t1 = 0., 0., 0., 0., 0., 0., 0., 0., 0.
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