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Nahuyiur/DER
DER is a machine learning model from Nahuyiur. Use it for the machine learning task on the model card, and read the license before you ship it in a product.
This repository contains trained model weights for the DER (Dynamic Enhancement for object detection) project.
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Updated Mar 28, 2026
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.pth602 MB · 68%
From the Hugging Face model README
This repository contains trained model weights for the DER (Dynamic Enhancement for object detection) project.
Model/
├── baseline/ # Baseline model weights
│ ├── VisDrone2019/
│ ├── UAVDT/
│ ├── TinyPerson/
│ └── DOTAv1/
└── DER_improved/ # DER-enhanced model weights
├── VisDrone2019/
├── UAVDT/
├── TinyPerson/
└── DOTAv1/
.pth (PyTorch).pdparams (PaddlePaddle)Files are named following the pattern: ModelName-Scale-Dataset.ext
Examples:
PP-PicoDet-l-VisDrone2019.pdparamsRTMDet-R2-tiny-UAVDT.pthfrom huggingface_hub import hf_hub_download
# Download PP-PicoDet baseline weights
weight_path = hf_hub_download(
repo_id="Nahuyiur/DER",
filename="PP-PicoDet/baseline/VisDrone2019/PP-PicoDet-l-VisDrone2019.pdparams"
)
# Download RTMDet-R2 DER-improved weights
weight_path = hf_hub_download(
repo_id="Nahuyiur/DER",
filename="RTMDet-R2/DER_improved/TinyPerson/RTMDet-R2-small-TinyPerson.pth"
)
Please refer to the original model repositories for license information.