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Author SHA1 Message Date
flyflydogdog
3a9e54fb96
Merge 27842e0eee970c0ce235739bb5b6d6fdb5edf223 into 453c6e38a51e9d1d5a2aa5fb7f1014a711913397 2025-03-14 11:15:15 +08:00
Wang Ao
453c6e38a5
Update README.md 2025-03-14 10:53:57 +08:00

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@ -10,7 +10,7 @@ Please check out our new release on [**YOLOE**](https://github.com/THU-MIG/yoloe
Comparison of performance, training cost, and inference efficiency between YOLOE (Ours) and YOLO-Worldv2 in terms of open text prompts. Comparison of performance, training cost, and inference efficiency between YOLOE (Ours) and YOLO-Worldv2 in terms of open text prompts.
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**YOLOE(ye)** is a highly **efficient**, **unified**, and **open** object detection and segmentation model for real-time seeing anything, like human eye, under different prompt mechanisms, like *texts*, *visual inputs*, and *prompt-free paradigm*. **YOLOE(ye)** is a highly **efficient**, **unified**, and **open** object detection and segmentation model for real-time seeing anything, like human eye, under different prompt mechanisms, like *texts*, *visual inputs*, and *prompt-free paradigm*, with **zero inference and transferring overhead** compared with closed-set YOLOs.
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<img src="https://github.com/THU-MIG/yoloe/blob/main/figures/visualization.svg" width=96%> <br> <img src="https://github.com/THU-MIG/yoloe/blob/main/figures/visualization.svg" width=96%> <br>