Instructions to use hf-internal-testing/tiny-random-VitPoseForPoseEstimation with libraries, inference providers, notebooks, and local apps. Follow these links to get started.
- Libraries
- Transformers
How to use hf-internal-testing/tiny-random-VitPoseForPoseEstimation with Transformers:
# Load model directly from transformers import AutoImageProcessor, VitPoseForPoseEstimation processor = AutoImageProcessor.from_pretrained("hf-internal-testing/tiny-random-VitPoseForPoseEstimation") model = VitPoseForPoseEstimation.from_pretrained("hf-internal-testing/tiny-random-VitPoseForPoseEstimation") - Notebooks
- Google Colab
- Kaggle
| library_name: transformers | |
| pipeline_tag: keypoint-detection | |
| # Model Card for Model ID | |
| <!-- Provide a quick summary of what the model is/does. --> | |
| ## Code to create | |
| ```python | |
| import torch | |
| from transformers import VitPoseConfig, VitPoseForPoseEstimation, VitPoseBackboneConfig, AutoProcessor | |
| model_id = "usyd-community/vitpose-plus-small" | |
| # Initializing a VitPose configuration | |
| configuration = VitPoseConfig.from_pretrained( | |
| model_id, | |
| backbone_config=VitPoseBackboneConfig( | |
| hidden_size=16, | |
| num_experts=2, | |
| num_attention_heads=2, | |
| part_features=10, | |
| ), | |
| ) | |
| # Initializing a model (with random weights) from the configuration | |
| model = VitPoseForPoseEstimation(configuration) | |
| torch.manual_seed(0) # Set for reproducibility | |
| for name, param in model.named_parameters(): | |
| param.data = torch.randn_like(param) | |
| # Accessing the model configuration | |
| configuration = model.config | |
| processor = AutoProcessor.from_pretrained(model_id) | |
| ``` | |
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