MIST: Multiple Instance Spatial Transformer
Baptiste Angles, Yuhe Jin, Simon Kornblith, Andrea Tagliasacchi, Kwang Moo Yi
摘要
We propose a deep network that can be trained to tackle image reconstruction and classification problems that involve detection of multiple object instances, without any supervision regarding their whereabouts. The network learns to extract the most significant K patches, and feeds these patches to a task-specific network -e.g., auto-encoder or classifier -to solve a domain specific problem. The challenge in training such a network is the non-differentiable top-K selection process. To address this issue, we lift the training optimization problem by treating the result of top-K selection as a slack variable, resulting in a simple, yet effective, multi-stage training. Our method is able to learn to detect recurring structures in the training dataset by learning to reconstruct images. It can also learn to localize structures when only knowledge on the occurrence of the object is provided, and in doing so it outperforms the state-of-the-art.
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引用它的顶会 Paper3
- Dual Attention Networks for Few-Shot Fine-Grained RecognitionShu-Lin Xu, Faen Zhang, Xiu-Shen Wei, Jianhua WangAAAI 2022 · 被引用 43 次
- TUSK: Task-Agnostic Unsupervised KeypointsYuhe Jin, Weiwei Sun, Jan Hosang, Eduard Trulls 等NeurIPS 2022 · 被引用 6 次
- Movies2Scenes: Using Movie Metadata to Learn Scene RepresentationShixing Chen, Chun-Hao Liu, Xiang Hao, Xiaohan Nie 等CVPR 2023
它引用的顶会 Paper3
- A Simple Framework for Contrastive Learning of Visual RepresentationsTing Chen, Simon Kornblith, Mohammad Norouzi, Geoffrey E. HintonICML 2020 · 被引用 24,064 次
- Weakly Supervised Object Detection With Segmentation CollaborationXiaoyan Li, Meina Kan, Shiguang Shan, Xilin ChenICCV 2019 · 被引用 105 次
- Linearized Multi-Sampling for Differentiable Image TransformationWei Jiang, Weiwei Sun, Andrea Tagliasacchi, Eduard Trulls 等ICCV 2019 · 被引用 24 次
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