LSM: Learning Subspace Minimization for Low-Level Vision
Chengzhou Tang, Lu Yuan, Ping Tan
摘要
We study the energy minimization problem in low-level vision tasks from a novel perspective. We replace the heuristic regularization term with a learnable subspace constraint, and preserve the data term to exploit domain knowledge derived from the first principle of a task. This learning subspace minimization (LSM) framework unifies the network structures and the parameters for many low-level vision tasks, which allows us to train a single network for multiple tasks simultaneously with completely shared parameters, and even generalizes the trained network to an unseen task as long as its data term can be formulated. We demonstrate our LSM framework on four low-level tasks including interactive image segmentation, video segmentation, stereo matching, and optical flow, and validate the network on various datasets. The experiments show that the proposed LSM generates state-of-the-art results with smaller model size, faster training convergence, and real-time inference.
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引用它的顶会 Paper5
- Motion Basis Learning for Unsupervised Deep Homography Estimation with Subspace ProjectionNianjin Ye, Chuan Wang, Haoqiang Fan, Shuaicheng LiuICCV 2021 · 被引用 69 次
- Many-to-many Splatting for Efficient Video Frame InterpolationPing Hu, Simon Niklaus, Stan Sclaroff, Kate SaenkoCVPR 2022 · 被引用 63 次
- Deep Homography Mixture for Single Image Rolling Shutter CorrectionWeilong Yan, Robby T. Tan, Bing Zeng, Shuaicheng LiuICCV 2023 · 被引用 16 次
- Multi-Object Discovery by Low-Dimensional Object MotionSadra Safadoust, Fatma GüneyICCV 2023 · 被引用 15 次
- Learning to Zoom Inside Camera Imaging PipelineChengzhou Tang, Yuqiang Yang, Bing Zeng, Ping Tan 等CVPR 2022 · 被引用 4 次
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