Visual Prompt Tuning On Vtab 1K Natural 7
Metrics
Mean Accuracy
Results
Performance results of various models on this benchmark
| Paper Title | ||
|---|---|---|
| SPT-Deep(ViT-B/16_MoCo_v3_pretrained_ImageNet-1K) | 76.20 | Revisiting the Power of Prompt for Visual Tuning |
| GateVPT(ViT-B/16_MoCo_v3_pretrained_ImageNet-1K) | 74.84 | Improving Visual Prompt Tuning for Self-supervised Vision Transformers |
| SPT-Shallow(ViT-B/16_MoCo_v3_pretrained_ImageNet-1K) | 74.47 | Revisiting the Power of Prompt for Visual Tuning |
| VPT-Deep(ViT-B/16_MoCo_v3_pretrained_ImageNet-1K) | 70.27 | Visual Prompt Tuning |
| VPT-Shallow(ViT-B/16_MoCo_v3_pretrained_ImageNet-1K) | 67.34 | Visual Prompt Tuning |
| SPT-Deep(ViT-B/16_MAE_pretrained_ImageNet-1K) | 67.19 | Revisiting the Power of Prompt for Visual Tuning |
| SPT-Shallow(ViT-B/16_MAE_pretrained_ImageNet-1K) | 62.53 | Revisiting the Power of Prompt for Visual Tuning |
| GateVPT(ViT-B/16_MAE_pretrained_ImageNet-1K) | 47.61 | Improving Visual Prompt Tuning for Self-supervised Vision Transformers |
| VPT-Shallow(ViT-B/16_MAE_pretrained_ImageNet-1K) | 39.96 | Visual Prompt Tuning |
| VPT-Deep(ViT-B/16_MAE_pretrained_ImageNet-1K) | 36.02 | Visual Prompt Tuning |
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