TensorRT转化代码
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  1. # Parameters
  2. nc: 80 # number of classes
  3. depth_multiple: 1.0 # model depth multiple
  4. width_multiple: 1.0 # layer channel multiple
  5. anchors:
  6. - [10,13, 16,30, 33,23] # P3/8
  7. - [30,61, 62,45, 59,119] # P4/16
  8. - [116,90, 156,198, 373,326] # P5/32
  9. # darknet53 backbone
  10. backbone:
  11. # [from, number, module, args]
  12. [[-1, 1, Conv, [32, 3, 1]], # 0
  13. [-1, 1, Conv, [64, 3, 2]], # 1-P1/2
  14. [-1, 1, Bottleneck, [64]],
  15. [-1, 1, Conv, [128, 3, 2]], # 3-P2/4
  16. [-1, 2, Bottleneck, [128]],
  17. [-1, 1, Conv, [256, 3, 2]], # 5-P3/8
  18. [-1, 8, Bottleneck, [256]],
  19. [-1, 1, Conv, [512, 3, 2]], # 7-P4/16
  20. [-1, 8, Bottleneck, [512]],
  21. [-1, 1, Conv, [1024, 3, 2]], # 9-P5/32
  22. [-1, 4, Bottleneck, [1024]], # 10
  23. ]
  24. # YOLOv3-SPP head
  25. head:
  26. [[-1, 1, Bottleneck, [1024, False]],
  27. [-1, 1, SPP, [512, [5, 9, 13]]],
  28. [-1, 1, Conv, [1024, 3, 1]],
  29. [-1, 1, Conv, [512, 1, 1]],
  30. [-1, 1, Conv, [1024, 3, 1]], # 15 (P5/32-large)
  31. [-2, 1, Conv, [256, 1, 1]],
  32. [-1, 1, nn.Upsample, [None, 2, 'nearest']],
  33. [[-1, 8], 1, Concat, [1]], # cat backbone P4
  34. [-1, 1, Bottleneck, [512, False]],
  35. [-1, 1, Bottleneck, [512, False]],
  36. [-1, 1, Conv, [256, 1, 1]],
  37. [-1, 1, Conv, [512, 3, 1]], # 22 (P4/16-medium)
  38. [-2, 1, Conv, [128, 1, 1]],
  39. [-1, 1, nn.Upsample, [None, 2, 'nearest']],
  40. [[-1, 6], 1, Concat, [1]], # cat backbone P3
  41. [-1, 1, Bottleneck, [256, False]],
  42. [-1, 2, Bottleneck, [256, False]], # 27 (P3/8-small)
  43. [[27, 22, 15], 1, Detect, [nc, anchors]], # Detect(P3, P4, P5)
  44. ]