Add model
Browse files- README.md +24 -0
- config.json +45 -0
- pytorch_model.bin +3 -0
README.md
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---
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tags:
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- image-classification
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- timm
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library_tag: timm
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license: cc-by-nc-4.0
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---
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# Model card for convnextv2_base.fcmae_ft_in22k_in1k
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A ConvNeXt-V2 image classification model. Pretrained with a fully convolutional masked autoencoder framework (FCMAE) and fine-tuned on ImageNet-22k and then ImageNet-1k.
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## Model Details
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- **Model Type:** Image classification / feature backbone
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- **Paper:** [**ConvNeXt V2: Co-designing and Scaling ConvNets with Masked Autoencoders**](http://arxiv.org/abs/2301.00808)
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## Citation
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```
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@article{Woo2023ConvNeXtV2,
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title={ConvNeXt V2: Co-designing and Scaling ConvNets with Masked Autoencoders},
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author={Sanghyun Woo, Shoubhik Debnath, Ronghang Hu, Xinlei Chen, Zhuang Liu, In So Kweon and Saining Xie},
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year={2023},
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journal={arXiv preprint arXiv:2301.00808},
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}
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```
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config.json
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{
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"architecture": "convnextv2_base",
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"num_classes": 1000,
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"num_features": 1024,
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"pretrained_cfg": {
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"tag": "fcmae_ft_in22k_in1k",
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"custom_load": false,
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"input_size": [
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3,
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224,
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224
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],
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"test_input_size": [
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3,
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288,
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288
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],
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"fixed_input_size": false,
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"interpolation": "bicubic",
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"crop_pct": 0.875,
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"test_crop_pct": 1.0,
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"crop_mode": "center",
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"mean": [
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0.485,
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0.456,
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0.406
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],
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"std": [
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0.229,
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0.224,
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0.225
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],
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"num_classes": 1000,
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"pool_size": [
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7,
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7
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],
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"first_conv": "stem.0",
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"classifier": "head.fc",
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"license": "cc-by-nc-4.0",
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"origin_url": "https://github.com/facebookresearch/ConvNeXt-V2",
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"paper_name": "ConvNeXt-V2: Co-designing and Scaling ConvNets with Masked Autoencoders",
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"paper_ids": "arXiv:2301.00808"
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}
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}
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pytorch_model.bin
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version https://git-lfs.github.com/spec/v1
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oid sha256:97a4a9add95fb90114ba041216a1bb9b828c47a99ae3e1ed2a8bf51f511a9bc3
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size 355010301
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