ultralytics 8.1.4 RTDETR TensorBoard graph visualization fix (#7725)
Signed-off-by: Glenn Jocher <glenn.jocher@ultralytics.com> Co-authored-by: UltralyticsAssistant <web@ultralytics.com>
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8 changed files with 65 additions and 26 deletions
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@ -376,7 +376,7 @@ class RTDETRDecoder(nn.Module):
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def _get_decoder_input(self, feats, shapes, dn_embed=None, dn_bbox=None):
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"""Generates and prepares the input required for the decoder from the provided features and shapes."""
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bs = len(feats)
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bs = feats.shape[0]
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# Prepare input for decoder
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anchors, valid_mask = self._generate_anchors(shapes, dtype=feats.dtype, device=feats.device)
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features = self.enc_output(valid_mask * feats) # bs, h*w, 256
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@ -101,10 +101,10 @@ class AIFI(TransformerEncoderLayer):
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@staticmethod
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def build_2d_sincos_position_embedding(w, h, embed_dim=256, temperature=10000.0):
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"""Builds 2D sine-cosine position embedding."""
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grid_w = torch.arange(int(w), dtype=torch.float32)
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grid_h = torch.arange(int(h), dtype=torch.float32)
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grid_w, grid_h = torch.meshgrid(grid_w, grid_h, indexing="ij")
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assert embed_dim % 4 == 0, "Embed dimension must be divisible by 4 for 2D sin-cos position embedding"
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grid_w = torch.arange(w, dtype=torch.float32)
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grid_h = torch.arange(h, dtype=torch.float32)
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grid_w, grid_h = torch.meshgrid(grid_w, grid_h, indexing="ij")
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pos_dim = embed_dim // 4
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omega = torch.arange(pos_dim, dtype=torch.float32) / pos_dim
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omega = 1.0 / (temperature**omega)
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