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Generalized Few-Shot Semantic Segmentation: All You Need is Fine-Tuning

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arxiv 2112.10982 v3 pith:YZG53QL5 submitted 2021-12-21 cs.CV cs.LG

classification cs.CVcs.LG
keywords few-shotfine-tuningonlysegmentationbaseclassesfinalgeneralized
verification ladder T0 review T1 audit T2 compute T3 formal
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Generalized few-shot semantic segmentation was introduced to move beyond only evaluating few-shot segmentation models on novel classes to include testing their ability to remember base classes. While the current state-of-the-art approach is based on meta-learning, it performs poorly and saturates in learning after observing only a few shots. We propose the first fine-tuning solution, and demonstrate that it addresses the saturation problem while achieving state-of-the-art results on two datasets, PASCAL-5i and COCO-20i. We also show that it outperforms existing methods, whether fine-tuning multiple final layers or only the final layer. Finally, we present a triplet loss regularization that shows how to redistribute the balance of performance between novel and base categories so that there is a smaller gap between them.

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Cited by 1 Pith paper

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  1. Probabilistic Prototype Calibration of Vision-Language Models for Generalized Few-shot Semantic Segmentation

    cs.CV 2025-06 conditional novelty 6.0 of 10

    FewCLIP calibrates frozen CLIP text prototypes with probabilistic visual prototypes, reporting large novel-class mIoU gains on PASCAL-5i and COCO-20i.

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