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Symmetry Understanding of 3D Shapes via Chirality Disentanglement

About

Chirality information (i.e. information that allows distinguishing left from right) is ubiquitous for various data modes in computer vision, including images, videos, point clouds, and meshes. While chirality has been extensively studied in the image domain, its exploration in shape analysis (such as point clouds and meshes) remains underdeveloped. Although many shape vertex descriptors have shown appealing properties (e.g. robustness to rigid-body transformations), they are often not able to disambiguate between left and right symmetric parts. Considering the ubiquity of chirality information in different shape analysis problems and the lack of chirality-aware features within current shape descriptors, developing a chirality feature extractor becomes necessary and urgent. Based on the recent Diff3F framework, we propose an unsupervised chirality feature extraction pipeline to decorate shape vertices with chirality-aware information, extracted from 2D foundation models. We evaluated the extracted chirality features through quantitative and qualitative experiments across diverse datasets. Results from downstream tasks including left-right disentanglement, shape matching, and part segmentation demonstrate their effectiveness and practical utility. Project page: https://wei-kang-wang.github.io/chirality/

Weikang Wang, Tobias Wei{\ss}berg, Nafie El Amrani, Florian Bernard• 2025

Related benchmarks

TaskDatasetResultRank
Non-rigid shape matchingSCAPE
Mean Geodesic Error0.048
16
Left/right classificationBeCoS h
Accuracy (L/R)94.69
10
Left/right classificationBeCoS a
Accuracy (L/R)92.05
10
Shape MatchingBeCoS h
Geodesic Error0.087
10
Shape MatchingBeCoS a
Geodesic Error0.104
10
Left/right classificationBeCoS
Accuracy93.04
5
Shape MatchingFaust
Geodesic Error0.048
5
Left/right classificationFaust
Accuracy (L/R)95.73
5
Left/right classificationSCAPE
Accuracy (L/R)96.53
5
Left/right classificationSMAL
Accuracy (L/R)96.58
5
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