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  1. import argparse
  2. import logging
  3. import sys
  4. from copy import deepcopy
  5. sys.path.append('./') # to run '$ python *.py' files in subdirectories
  6. logger = logging.getLogger(__name__)
  7. from models.common import *
  8. from models.experimental import *
  9. from utils.autoanchor import check_anchor_order
  10. from utils.general import make_divisible, check_file, set_logging
  11. from utils.torch_utils import time_synchronized, fuse_conv_and_bn, model_info, scale_img, initialize_weights, \
  12. select_device, copy_attr
  13. try:
  14. import thop # for FLOPS computation
  15. except ImportError:
  16. thop = None
  17. class Detect(nn.Module):
  18. stride = None # strides computed during build
  19. export = False # onnx export
  20. def __init__(self, nc=80, anchors=(), ch=()): # detection layer
  21. super(Detect, self).__init__()
  22. self.nc = nc # number of classes
  23. self.no = nc + 5 # number of outputs per anchor
  24. self.nl = len(anchors) # number of detection layers
  25. self.na = len(anchors[0]) // 2 # number of anchors
  26. self.grid = [torch.zeros(1)] * self.nl # init grid
  27. a = torch.tensor(anchors).float().view(self.nl, -1, 2)
  28. self.register_buffer('anchors', a) # shape(nl,na,2)
  29. self.register_buffer('anchor_grid', a.clone().view(self.nl, 1, -1, 1, 1, 2)) # shape(nl,1,na,1,1,2)
  30. self.m = nn.ModuleList(nn.Conv2d(x, self.no * self.na, 1) for x in ch) # output conv
  31. def forward(self, x):
  32. # x = x.copy() # for profiling
  33. z = [] # inference output
  34. self.training |= self.export
  35. for i in range(self.nl):
  36. x[i] = self.m[i](x[i]) # conv
  37. bs, _, ny, nx = x[i].shape # x(bs,255,20,20) to x(bs,3,20,20,85)
  38. x[i] = x[i].view(bs, self.na, self.no, ny, nx).permute(0, 1, 3, 4, 2).contiguous()
  39. if not self.training: # inference
  40. if self.grid[i].shape[2:4] != x[i].shape[2:4]:
  41. self.grid[i] = self._make_grid(nx, ny).to(x[i].device)
  42. y = x[i].sigmoid()
  43. y[..., 0:2] = (y[..., 0:2] * 2. - 0.5 + self.grid[i].to(x[i].device)) * self.stride[i] # xy
  44. y[..., 2:4] = (y[..., 2:4] * 2) ** 2 * self.anchor_grid[i] # wh
  45. z.append(y.view(bs, -1, self.no))
  46. return x if self.training else (torch.cat(z, 1), x)
  47. @staticmethod
  48. def _make_grid(nx=20, ny=20):
  49. yv, xv = torch.meshgrid([torch.arange(ny), torch.arange(nx)])
  50. return torch.stack((xv, yv), 2).view((1, 1, ny, nx, 2)).float()
  51. class Model(nn.Module):
  52. def __init__(self, cfg='yolov5s.yaml', ch=3, nc=None): # model, input channels, number of classes
  53. super(Model, self).__init__()
  54. if isinstance(cfg, dict):
  55. self.yaml = cfg # model dict
  56. else: # is *.yaml
  57. import yaml # for torch hub
  58. self.yaml_file = Path(cfg).name
  59. with open(cfg) as f:
  60. self.yaml = yaml.load(f, Loader=yaml.SafeLoader) # model dict
  61. # Define model
  62. ch = self.yaml['ch'] = self.yaml.get('ch', ch) # input channels
  63. if nc and nc != self.yaml['nc']:
  64. logger.info('Overriding model.yaml nc=%g with nc=%g' % (self.yaml['nc'], nc))
  65. self.yaml['nc'] = nc # override yaml value
  66. self.model, self.save = parse_model(deepcopy(self.yaml), ch=[ch]) # model, savelist
  67. self.names = [str(i) for i in range(self.yaml['nc'])] # default names
  68. # print([x.shape for x in self.forward(torch.zeros(1, ch, 64, 64))])
  69. # Build strides, anchors
  70. m = self.model[-1] # Detect()
  71. if isinstance(m, Detect):
  72. s = 256 # 2x min stride
  73. m.stride = torch.tensor([s / x.shape[-2] for x in self.forward(torch.zeros(1, ch, s, s))]) # forward
  74. m.anchors /= m.stride.view(-1, 1, 1)
  75. check_anchor_order(m)
  76. self.stride = m.stride
  77. self._initialize_biases() # only run once
  78. # print('Strides: %s' % m.stride.tolist())
  79. # Init weights, biases
  80. initialize_weights(self)
  81. self.info()
  82. logger.info('')
  83. def forward(self, x, augment=False, profile=False):
  84. if augment:
  85. img_size = x.shape[-2:] # height, width
  86. s = [1, 0.83, 0.67] # scales
  87. f = [None, 3, None] # flips (2-ud, 3-lr)
  88. y = [] # outputs
  89. for si, fi in zip(s, f):
  90. xi = scale_img(x.flip(fi) if fi else x, si, gs=int(self.stride.max()))
  91. yi = self.forward_once(xi)[0] # forward
  92. # cv2.imwrite(f'img_{si}.jpg', 255 * xi[0].cpu().numpy().transpose((1, 2, 0))[:, :, ::-1]) # save
  93. yi[..., :4] /= si # de-scale
  94. if fi == 2:
  95. yi[..., 1] = img_size[0] - 1 - yi[..., 1] # de-flip ud
  96. elif fi == 3:
  97. yi[..., 0] = img_size[1] - 1 - yi[..., 0] # de-flip lr
  98. y.append(yi)
  99. return torch.cat(y, 1), None # augmented inference, train
  100. else:
  101. return self.forward_once(x, profile) # single-scale inference, train
  102. def forward_once(self, x, profile=False):
  103. y, dt = [], [] # outputs
  104. for m in self.model:
  105. if m.f != -1: # if not from previous layer
  106. x = y[m.f] if isinstance(m.f, int) else [x if j == -1 else y[j] for j in m.f] # from earlier layers
  107. if profile:
  108. o = thop.profile(m, inputs=(x,), verbose=False)[0] / 1E9 * 2 if thop else 0 # FLOPS
  109. t = time_synchronized()
  110. for _ in range(10):
  111. _ = m(x)
  112. dt.append((time_synchronized() - t) * 100)
  113. print('%10.1f%10.0f%10.1fms %-40s' % (o, m.np, dt[-1], m.type))
  114. x = m(x) # run
  115. y.append(x if m.i in self.save else None) # save output
  116. if profile:
  117. print('%.1fms total' % sum(dt))
  118. return x
  119. def _initialize_biases(self, cf=None): # initialize biases into Detect(), cf is class frequency
  120. # https://arxiv.org/abs/1708.02002 section 3.3
  121. # cf = torch.bincount(torch.tensor(np.concatenate(dataset.labels, 0)[:, 0]).long(), minlength=nc) + 1.
  122. m = self.model[-1] # Detect() module
  123. for mi, s in zip(m.m, m.stride): # from
  124. b = mi.bias.view(m.na, -1) # conv.bias(255) to (3,85)
  125. b.data[:, 4] += math.log(8 / (640 / s) ** 2) # obj (8 objects per 640 image)
  126. b.data[:, 5:] += math.log(0.6 / (m.nc - 0.99)) if cf is None else torch.log(cf / cf.sum()) # cls
  127. mi.bias = torch.nn.Parameter(b.view(-1), requires_grad=True)
  128. def _print_biases(self):
  129. m = self.model[-1] # Detect() module
  130. for mi in m.m: # from
  131. b = mi.bias.detach().view(m.na, -1).T # conv.bias(255) to (3,85)
  132. print(('%6g Conv2d.bias:' + '%10.3g' * 6) % (mi.weight.shape[1], *b[:5].mean(1).tolist(), b[5:].mean()))
  133. # def _print_weights(self):
  134. # for m in self.model.modules():
  135. # if type(m) is Bottleneck:
  136. # print('%10.3g' % (m.w.detach().sigmoid() * 2)) # shortcut weights
  137. def fuse(self): # fuse model Conv2d() + BatchNorm2d() layers
  138. print('Fusing layers... ')
  139. for m in self.model.modules():
  140. if type(m) is Conv and hasattr(m, 'bn'):
  141. m.conv = fuse_conv_and_bn(m.conv, m.bn) # update conv
  142. delattr(m, 'bn') # remove batchnorm
  143. m.forward = m.fuseforward # update forward
  144. self.info()
  145. return self
  146. def nms(self, mode=True): # add or remove NMS module
  147. present = type(self.model[-1]) is NMS # last layer is NMS
  148. if mode and not present:
  149. print('Adding NMS... ')
  150. m = NMS() # module
  151. m.f = -1 # from
  152. m.i = self.model[-1].i + 1 # index
  153. self.model.add_module(name='%s' % m.i, module=m) # add
  154. self.eval()
  155. elif not mode and present:
  156. print('Removing NMS... ')
  157. self.model = self.model[:-1] # remove
  158. return self
  159. def autoshape(self): # add autoShape module
  160. print('Adding autoShape... ')
  161. m = autoShape(self) # wrap model
  162. copy_attr(m, self, include=('yaml', 'nc', 'hyp', 'names', 'stride'), exclude=()) # copy attributes
  163. return m
  164. def info(self, verbose=False, img_size=640): # print model information
  165. model_info(self, verbose, img_size)
  166. def parse_model(d, ch): # model_dict, input_channels(3)
  167. logger.info('\n%3s%18s%3s%10s %-40s%-30s' % ('', 'from', 'n', 'params', 'module', 'arguments'))
  168. anchors, nc, gd, gw = d['anchors'], d['nc'], d['depth_multiple'], d['width_multiple']
  169. na = (len(anchors[0]) // 2) if isinstance(anchors, list) else anchors # number of anchors
  170. no = na * (nc + 5) # number of outputs = anchors * (classes + 5)
  171. layers, save, c2 = [], [], ch[-1] # layers, savelist, ch out
  172. for i, (f, n, m, args) in enumerate(d['backbone'] + d['head']): # from, number, module, args
  173. m = eval(m) if isinstance(m, str) else m # eval strings
  174. for j, a in enumerate(args):
  175. try:
  176. args[j] = eval(a) if isinstance(a, str) else a # eval strings
  177. except:
  178. pass
  179. n = max(round(n * gd), 1) if n > 1 else n # depth gain
  180. if m in [Conv, GhostConv, Bottleneck, GhostBottleneck, SPP, DWConv, MixConv2d, Focus, CrossConv, BottleneckCSP,
  181. C3]:
  182. c1, c2 = ch[f], args[0]
  183. if c2 != no: # if not output
  184. c2 = make_divisible(c2 * gw, 8)
  185. args = [c1, c2, *args[1:]]
  186. if m in [BottleneckCSP, C3]:
  187. args.insert(2, n) # number of repeats
  188. n = 1
  189. elif m is nn.BatchNorm2d:
  190. args = [ch[f]]
  191. elif m is Concat:
  192. c2 = sum([ch[x] for x in f])
  193. elif m is Detect:
  194. args.append([ch[x] for x in f])
  195. if isinstance(args[1], int): # number of anchors
  196. args[1] = [list(range(args[1] * 2))] * len(f)
  197. elif m is Contract:
  198. c2 = ch[f] * args[0] ** 2
  199. elif m is Expand:
  200. c2 = ch[f] // args[0] ** 2
  201. else:
  202. c2 = ch[f]
  203. m_ = nn.Sequential(*[m(*args) for _ in range(n)]) if n > 1 else m(*args) # module
  204. t = str(m)[8:-2].replace('__main__.', '') # module type
  205. np = sum([x.numel() for x in m_.parameters()]) # number params
  206. m_.i, m_.f, m_.type, m_.np = i, f, t, np # attach index, 'from' index, type, number params
  207. logger.info('%3s%18s%3s%10.0f %-40s%-30s' % (i, f, n, np, t, args)) # print
  208. save.extend(x % i for x in ([f] if isinstance(f, int) else f) if x != -1) # append to savelist
  209. layers.append(m_)
  210. if i == 0:
  211. ch = []
  212. ch.append(c2)
  213. return nn.Sequential(*layers), sorted(save)
  214. if __name__ == '__main__':
  215. parser = argparse.ArgumentParser()
  216. parser.add_argument('--cfg', type=str, default='yolov5s.yaml', help='model.yaml')
  217. parser.add_argument('--device', default='', help='cuda device, i.e. 0 or 0,1,2,3 or cpu')
  218. opt = parser.parse_args()
  219. opt.cfg = check_file(opt.cfg) # check file
  220. set_logging()
  221. device = select_device(opt.device)
  222. # Create model
  223. model = Model(opt.cfg).to(device)
  224. model.train()
  225. # Profile
  226. # img = torch.rand(8 if torch.cuda.is_available() else 1, 3, 640, 640).to(device)
  227. # y = model(img, profile=True)
  228. # Tensorboard
  229. # from torch.utils.tensorboard import SummaryWriter
  230. # tb_writer = SummaryWriter()
  231. # print("Run 'tensorboard --logdir=models/runs' to view tensorboard at http://localhost:6006/")
  232. # tb_writer.add_graph(model.model, img) # add model to tensorboard
  233. # tb_writer.add_image('test', img[0], dataformats='CWH') # add model to tensorboard