Add model
Browse files- README.md +115 -0
- config.json +36 -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: apache-2.0
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datasets:
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- imagenet-1k
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---
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# Model card for levit_192.fb_dist_in1k
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A LeViT image classification model using convolutional mode (using nn.Conv2d and nn.BatchNorm2d). Pretrained on ImageNet-1k using distillation by paper authors.
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## Model Details
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- **Model Type:** Image classification / feature backbone
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- **Model Stats:**
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- Params (M): 10.9
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- GMACs: 0.7
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- Activations (M): 3.2
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- Image size: 224 x 224
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- **Papers:**
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- LeViT: a Vision Transformer in ConvNet's Clothing for Faster Inference: https://arxiv.org/abs/2104.01136
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- **Original:** https://github.com/facebookresearch/LeViT
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- **Dataset:** ImageNet-1k
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## Model Usage
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### Image Classification
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```python
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from urllib.request import urlopen
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from PIL import Image
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import timm
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img = Image.open(
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urlopen('https://huggingface.co/datasets/huggingface/documentation-images/resolve/main/beignets-task-guide.png'))
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model = timm.create_model('levit_192.fb_dist_in1k', pretrained=True)
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model = model.eval()
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# get model specific transforms (normalization, resize)
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data_config = timm.data.resolve_model_data_config(model)
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transforms = timm.data.create_transform(**data_config, is_training=False)
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output = model(transforms(img).unsqueeze(0)) # unsqueeze single image into batch of 1
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top5_probabilities, top5_class_indices = torch.topk(output.softmax(dim=1) * 100, k=5)
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```
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### Image Embeddings
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```python
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from urllib.request import urlopen
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from PIL import Image
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import timm
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img = Image.open(
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urlopen('https://huggingface.co/datasets/huggingface/documentation-images/resolve/main/beignets-task-guide.png'))
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model = timm.create_model(
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'levit_192.fb_dist_in1k',
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pretrained=True,
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num_classes=0, # remove classifier nn.Linear
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)
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model = model.eval()
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# get model specific transforms (normalization, resize)
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data_config = timm.data.resolve_model_data_config(model)
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transforms = timm.data.create_transform(**data_config, is_training=False)
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output = model(transforms(img).unsqueeze(0)) # output is (batch_size, num_features) shaped tensor
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# or equivalently (without needing to set num_classes=0)
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output = model.forward_features(transforms(img).unsqueeze(0))
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# output is unpooled (ie.e a (batch_size, num_features, H, W) tensor
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output = model.forward_head(output, pre_logits=True)
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# output is (batch_size, num_features) tensor
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```
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## Model Comparison
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|model |top1 |top5 |param_count|img_size|
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|-----------------------------------|------|------|-----------|--------|
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|levit_384.fb_dist_in1k |82.596|96.012|39.13 |224 |
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|levit_conv_384.fb_dist_in1k |82.596|96.012|39.13 |224 |
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|levit_256.fb_dist_in1k |81.512|95.48 |18.89 |224 |
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|levit_conv_256.fb_dist_in1k |81.512|95.48 |18.89 |224 |
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|levit_conv_192.fb_dist_in1k |79.86 |94.792|10.95 |224 |
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|levit_192.fb_dist_in1k |79.858|94.792|10.95 |224 |
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|levit_128.fb_dist_in1k |78.474|94.014|9.21 |224 |
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|levit_conv_128.fb_dist_in1k |78.474|94.02 |9.21 |224 |
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|levit_128s.fb_dist_in1k |76.534|92.864|7.78 |224 |
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|levit_conv_128s.fb_dist_in1k |76.532|92.864|7.78 |224 |
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## Citation
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```bibtex
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@InProceedings{Graham_2021_ICCV,
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author = {Graham, Benjamin and El-Nouby, Alaaeldin and Touvron, Hugo and Stock, Pierre and Joulin, Armand and Jegou, Herve and Douze, Matthijs},
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title = {LeViT: A Vision Transformer in ConvNet's Clothing for Faster Inference},
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booktitle = {Proceedings of the IEEE/CVF International Conference on Computer Vision (ICCV)},
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month = {October},
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year = {2021},
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pages = {12259-12269}
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}
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```
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```bibtex
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@misc{rw2019timm,
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author = {Ross Wightman},
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title = {PyTorch Image Models},
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year = {2019},
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publisher = {GitHub},
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journal = {GitHub repository},
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doi = {10.5281/zenodo.4414861},
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howpublished = {\url{https://github.com/rwightman/pytorch-image-models}}
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}
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```
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config.json
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{
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"architecture": "levit_192",
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"num_classes": 1000,
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"num_features": 384,
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"global_pool": "avg",
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"pretrained_cfg": {
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"tag": "fb_dist_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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"fixed_input_size": true,
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"interpolation": "bicubic",
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"crop_pct": 0.9,
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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": null,
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"first_conv": "stem.conv1.linear",
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"classifier": [
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"head.linear",
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"head_dist.linear"
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]
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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 sha256:7a418f41267b7fe6928c013b8ceff8166743bfbc5eeb5d17a52fcbe10db499a2
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size 44153613
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