Hyperpixel Flow: Semantic Correspondence With Multi-Layer Neural Features
Juhong Min, Jongmin Lee, Jean Ponce, Minsu Cho
摘要
Establishing visual correspondences under large intra-class variations requires analyzing images at different levels, from features linked to semantics and context to local patterns, while being invariant to instance-specific details. To tackle these challenges, we represent images by “hyperpixels” that leverage a small number of relevant features selected among early to late layers of a convolutional neural network. Taking advantage of the condensed features of hyperpixels, we develop an effective real-time matching algorithm based on Hough geometric voting. The proposed method, hyperpixel flow, sets a new state of the art on three standard benchmarks as well as a new dataset, SPair-71k, which contains a significantly larger number of image pairs than existing datasets, with more accurate and richer annotations for in-depth analysis.
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引用它的顶会 Paper42
- Hypercorrelation Squeeze for Few-Shot SegmenationJuhong Min, Dahyun Kang, Minsu ChoICCV 2021 · 被引用 413 次
- Diffusion Hyperfeatures: Searching Through Time and Space for Semantic CorrespondenceGrace Luo, Lisa Dunlap, Dong Huk Park, Aleksander Holynski 等NeurIPS 2023 · 被引用 261 次
- Relational Embedding for Few-Shot ClassificationDahyun Kang, Heeseung Kwon, Juhong Min, Minsu ChoICCV 2021 · 被引用 254 次
- Dual-Resolution Correspondence NetworksXinghui Li, Kai Han, Shuda Li, Victor PrisacariuNeurIPS 2020 · 被引用 207 次
- CATs: Cost Aggregation Transformers for Visual CorrespondenceSeokju Cho, Sunghwan Hong, Sangryul Jeon, Yunsung Lee 等NeurIPS 2021 · 被引用 133 次
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