Generalized Few-Shot Semantic Segmentation

4 papers with code • 4 benchmarks • 0 datasets

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Most implemented papers

Generalized Few-shot Semantic Segmentation

dvlab-research/gfs-seg CVPR 2022

Then, since context is essential for semantic segmentation, we propose the Context-Aware Prototype Learning (CAPL) that significantly improves performance by 1) leveraging the co-occurrence prior knowledge from support samples, and 2) dynamically enriching contextual information to the classifier, conditioned on the content of each query image.

A Strong Baseline for Generalized Few-Shot Semantic Segmentation

sinahmr/diam CVPR 2023

In addition, the terms derived from our MI-based formulation are coupled with a knowledge distillation term to retain the knowledge on base classes.

Learning Orthogonal Prototypes for Generalized Few-Shot Semantic Segmentation

lsa1997/POP CVPR 2023

POP builds a set of orthogonal prototypes, each of which represents a semantic class, and makes the prediction for each class separately based on the features projected onto its prototype.

Harmonizing Base and Novel Classes: A Class-Contrastive Approach for Generalized Few-Shot Segmentation

liuweide01/HBNC 24 Mar 2023

Current methods for few-shot segmentation (FSSeg) have mainly focused on improving the performance of novel classes while neglecting the performance of base classes.