Compositor: Bottom-Up Clustering and Compositing for Robust Part and Object Segmentation
Ju He, Jieneng Chen, Ming-Xian Lin, Qihang Yu, Alan L. Yuille
摘要
In this work, we present a robust approach for joint part and object segmentation. Specifically, we reformulate object and part segmentation as an optimization problem and build a hierarchical feature representation including pixel, part, and object-level embeddings to solve it in a bottom-up clustering manner. Pixels are grouped into several clusters where the part-level embeddings serve as cluster centers. Afterwards, object masks are obtained by compositing the part proposals. This bottom-up interaction is shown to be effective in integrating information from lower semantic levels to higher semantic levels. Based on that, our novel approach Compositor produces part and object segmentation masks simultaneously while improving the mask quality. Compositor achieves state-of-the-art performance on PartImageNet and Pascal-Part by outperforming previous methods by around 0.9% and 1.3% on PartImageNet, 0.4% and 1.7% on Pascal-Part in terms of part and object mIoU and demonstrates better robustness against occlusion by around 4.4% and 7.1% on part and object respectively.
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引用它的顶会 Paper5
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- Knowledge-Guided Part SegmentationXuejian Gou, Fang Liu, Licheng Jiao, Shuo Li 等ICCV 2025 · 被引用 1 次
- Fine-Grained Image-Text Correspondence with Cost Aggregation for Open-Vocabulary Part SegmentationJiho Choi, Seonho Lee, Minhyun Lee, Seungho Lee 等CVPR 2025
- Visually Consistent Hierarchical Image ClassificationSeulki Park, Youren Zhang, Stella X. Yu, Sara Beery 等ICLR 2025
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