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High quality 5000 images from danbooru. They were shuffled and split into train:eval at 4500:500. (Same as p1atdev/siglip-tagger-test-2)
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## Training procedure
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### Training hyperparameters
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The following hyperparameters were used during training:
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High quality 5000 images from danbooru. They were shuffled and split into train:eval at 4500:500. (Same as p1atdev/siglip-tagger-test-2)
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|Name|Description|
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|Images count|5000|
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|Supported tags|9517 general tags. Character and rating tags are not included. See all labels in [config.json](config.json)|
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|Image rating|4000 for `general` and 1000 for `sensitive,questionable,explicit`|
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|Copyright tags|`original` only|
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|Image score range (on search)|min:10, max150|
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## Training procedure
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- Loss function: AsymmetricLossOptimized ([Asymmetric Loss](https://github.com/Alibaba-MIIL/ASL))
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- `gamma_neg=4, gamma_pos=1, clip=0.05, eps=1e-8, disable_torch_grad_focal_loss=False`
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### Training hyperparameters
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The following hyperparameters were used during training:
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