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High-Resolution Optical Flow from 1D Attention and Correlation

2021-04-28 17:56:34
Haofei Xu, Jiaolong Yang, Jianfei Cai, Juyong Zhang, Xin Tong

Abstract

Optical flow is inherently a 2D search problem, and thus the computational complexity grows quadratically with respect to the search window, making large displacements matching infeasible for high-resolution images. In this paper, we propose a new method for high-resolution optical flow estimation with significantly less computation, which is achieved by factorizing 2D optical flow with 1D attention and correlation. Specifically, we first perform a 1D attention operation in the vertical direction of the target image, and then a simple 1D correlation in the horizontal direction of the attended image can achieve 2D correspondence modeling effect. The directions of attention and correlation can also be exchanged, resulting in two 3D cost volumes that are concatenated for optical flow estimation. The novel 1D formulation empowers our method to scale to very high-resolution input images while maintaining competitive performance. Extensive experiments on Sintel, KITTI and real-world 4K ($2160 \times 3840$) resolution images demonstrated the effectiveness and superiority of our proposed method.

Abstract (translated)

URL

https://arxiv.org/abs/2104.13918

PDF

https://arxiv.org/pdf/2104.13918.pdf


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