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transformers/docs/source/en/model_doc/timm_wrapper.md
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<!--Copyright 2024 The HuggingFace Team. All rights reserved.
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# TimmWrapper
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<div class="flex flex-wrap space-x-1">
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<img alt="PyTorch" src="https://img.shields.io/badge/PyTorch-DE3412?style=flat&logo=pytorch&logoColor=white">
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</div>
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## Overview
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Helper class to enable loading timm models to be used with the transformers library and its autoclasses.
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```python
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>>> import torch
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>>> from PIL import Image
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>>> from urllib.request import urlopen
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>>> from transformers import AutoModelForImageClassification, AutoImageProcessor
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>>> # Load image
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>>> image = Image.open(urlopen(
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... 'https://huggingface.co/datasets/huggingface/documentation-images/resolve/main/beignets-task-guide.png'
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... ))
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>>> # Load model and image processor
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>>> checkpoint = "timm/resnet50.a1_in1k"
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>>> image_processor = AutoImageProcessor.from_pretrained(checkpoint)
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>>> model = AutoModelForImageClassification.from_pretrained(checkpoint).eval()
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>>> # Preprocess image
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>>> inputs = image_processor(image)
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>>> # Forward pass
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>>> with torch.no_grad():
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... logits = model(**inputs).logits
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>>> # Get top 5 predictions
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>>> top5_probabilities, top5_class_indices = torch.topk(logits.softmax(dim=1) * 100, k=5)
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```
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## Resources:
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A list of official Hugging Face and community (indicated by 🌎) resources to help you get started with TimmWrapper.
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<PipelineTag pipeline="image-classification"/>
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- [Collection of Example Notebook](https://github.com/ariG23498/timm-wrapper-examples) 🌎
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> [!TIP]
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> For a more detailed overview please read the [official blog post](https://huggingface.co/blog/timm-transformers) on the timm integration.
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## TimmWrapperConfig
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[[autodoc]] TimmWrapperConfig
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## TimmWrapperImageProcessor
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[[autodoc]] TimmWrapperImageProcessor
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- preprocess
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## TimmWrapperModel
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[[autodoc]] TimmWrapperModel
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- forward
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## TimmWrapperForImageClassification
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[[autodoc]] TimmWrapperForImageClassification
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- forward
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