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Diffusion Hyperfeatures: Searching Through Time and Space for Semantic Correspondence

About

Diffusion models have been shown to be capable of generating high-quality images, suggesting that they could contain meaningful internal representations. Unfortunately, the feature maps that encode a diffusion model's internal information are spread not only over layers of the network, but also over diffusion timesteps, making it challenging to extract useful descriptors. We propose Diffusion Hyperfeatures, a framework for consolidating multi-scale and multi-timestep feature maps into per-pixel feature descriptors that can be used for downstream tasks. These descriptors can be extracted for both synthetic and real images using the generation and inversion processes. We evaluate the utility of our Diffusion Hyperfeatures on the task of semantic keypoint correspondence: our method achieves superior performance on the SPair-71k real image benchmark. We also demonstrate that our method is flexible and transferable: our feature aggregation network trained on the inversion features of real image pairs can be used on the generation features of synthetic image pairs with unseen objects and compositions. Our code is available at https://diffusion-hyperfeatures.github.io.

Grace Luo, Lisa Dunlap, Dong Huk Park, Aleksander Holynski, Trevor Darrell• 2023

Related benchmarks

TaskDatasetResultRank
Semantic CorrespondenceSPair-71k (test)
PCK@0.164.9
122
Semantic CorrespondencePF-Pascal (test)
PCK@0.190.4
106
Semantic CorrespondencePF-PASCAL
PCK @ alpha=0.190.4
98
Semantic CorrespondenceSPair-71k
Φ_bbox @ α=0.164.61
29
Semantic CorrespondenceSPair-71k
Aero Accuracy74
23
Semantic MatchingSPair-71k
PCK@0.0550.2
14
Semantic CorrespondenceAP-10K Intra-species (test)
PCK@0.018
12
Semantic CorrespondenceAP-10K Cross-species (test)
PCK@0.010.068
12
Semantic CorrespondenceSPair-71k
PCK @ 0.018.7
11
Semantic MatchingSPair-71k
PCK @ alpha_bbox (0.1)64.6
9
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