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Author:

Zhao, Q. (Zhao, Q..) | Liu, B. (Liu, B..) | Lyu, S. (Lyu, S..) | Chen, H. (Chen, H..)

Indexed by:

EI Scopus SCIE

Abstract:

Few-shot segmentation focuses on the generalization of models to segment unseen object with limited annotated samples. However, existing approaches still face two main challenges. First, huge feature distinction between support and query images causes knowledge transferring barrier, which harms the segmentation performance. Second, limited support prototypes cannot adequately represent features of support objects, hard to guide high-quality query segmentation. To deal with the above two issues, we propose self-distillation embedded supervised affinity attention model to improve the performance of few-shot segmentation task. Specifically, the self-distillation guided prototype module uses self-distillation to align the features of support and query. The supervised affinity attention module generates high-quality query attention map to provide sufficient object information. Extensive experiments prove that our model significantly improves the performance compared to existing methods. Comprehensive ablation experiments and visualization studies also show the significant effect of our method on few-shot segmentation task. On COCO-20i dataset, we achieve new state-of-the-art results. Training code and pretrained models are available at https://github.com/cv516Buaa/SD-AANet. Author

Keyword:

Few-shot Learning Feature extraction Semantic segmentation Task analysis Few-shot Segmentation Self-distillation Training Attention Mechanism Convolutional neural networks Semantics Prototypes

Author Community:

  • [ 1 ] [Zhao Q.]Department of Electronic and Information Engineering, Beihang University, Beijing, P.R. China
  • [ 2 ] [Liu B.]Department of Electronic and Information Engineering, Beihang University, Beijing, P.R. China
  • [ 3 ] [Lyu S.]Department of Electronic and Information Engineering, Beihang University, Beijing, P.R. China
  • [ 4 ] [Chen H.]College of Humanities and Social Sciences, Beijing University of Technology, Beijing, P.R. China

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Source :

IEEE Transactions on Cognitive and Developmental Systems

ISSN: 2379-8920

Year: 2023

Issue: 1

Volume: 16

Page: 1-1

Cited Count:

WoS CC Cited Count: 0

SCOPUS Cited Count: 12

ESI Highly Cited Papers on the List: 0 Unfold All

WanFang Cited Count:

Chinese Cited Count:

30 Days PV: 6

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