Papers › Separable Self-attention for Mobile Vision Transformers
Separable Self-attention for Mobile Vision Transformers
Sachin Mehta, Mohammad Rastegari
Mobile vision transformers (MobileViT) can achieve state-of-the-art performance across several mobile vision tasks, including classification and detection. Though these models have fewer parameters, they have high latency as compared to convolutional neural network-based models. The main efficiency bottleneck in MobileViT is the multi-headed self-attention (MHA) in transformers, which requires O(k²) time complexity with respect to the number of tokens (or patches) k. Moreover, MHA requires costly operations (e.g., batch-wise matrix multiplication) for computing self-attention, impacting latency on resource-constrained devices. This paper introduces a separable self-attention method with linear complexity, i.e. O(k). A simple yet effective characteristic of the proposed method is that it uses element-wise operations for computing self-attention, making it a good choice for resource-constrained devices. The improved model, MobileViTv2, is state-of-the-art on several mobile vision tasks, including ImageNet object classification and MS-COCO object detection. With about three million parameters, MobileViTv2 achieves a top-1 accuracy of 75.6% on the ImageNet dataset, outperforming MobileViT by about 1% while running 3.2× faster on a mobile device. Our source code is available at: \url{https://github.com/apple/ml-cvnets}
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46467acb70052484 · report
Tasks
Results from the paper archive 2025-07-28
| Task | Dataset | Model | Metric | Value | Rank at snapshot | Leaderboard | Report |
|---|---|---|---|---|---|---|---|
| Image Classification | ImageNet | MobileViTv2-1.0 | GFLOPs | 1.8 | #852 of 1060 | Archive leaderboard | report |
| Image Classification | ImageNet | MobileViTv2-1.0 | Number of params | 4.9M | #852 of 1060 | Archive leaderboard | report |
| Image Classification | ImageNet | MobileViTv2-1.0 | Top 1 Accuracy | 78.1% | #852 of 1060 | Archive leaderboard | report |
| Image Classification | ImageNet | MobileViTv2-0.75 | GFLOPs | 1.0 | #943 of 1060 | Archive leaderboard | report |
| Image Classification | ImageNet | MobileViTv2-0.75 | Number of params | 2.9M | #943 of 1060 | Archive leaderboard | report |
| Image Classification | ImageNet | MobileViTv2-0.75 | Top 1 Accuracy | 75.6% | #943 of 1060 | Archive leaderboard | report |
| Image Classification | ImageNet | MobileViTv2-0.5 | GFLOPs | 0.5 | #1023 of 1060 | Archive leaderboard | report |
| Image Classification | ImageNet | MobileViTv2-0.5 | Number of params | 1.4M | #1023 of 1060 | Archive leaderboard | report |
| Image Classification | ImageNet | MobileViTv2-0.5 | Top 1 Accuracy | 70.2% | #1023 of 1060 | Archive leaderboard | report |
Ranks are positions in the archive's leaderboards as they stood at the 2025-07-28 snapshot. Results published since then are not among these rows, so a rank here is not a current standing.
Methods
Introduced by this paper: MobileViTv2
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