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CLIP-Driven Prototype Network for Few-Shot Semantic Segmentation.

Shi-Cheng Guo1, Shang-Kun Liu1, Jing-Yu Wang1

  • 1College of Computer Science and Engineering, Shandong University of Science and Technology, Qingdao 266590, China.

Entropy (Basel, Switzerland)
|September 28, 2023
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Summary
This summary is machine-generated.

This study introduces a novel few-shot segmentation method using CLIP's text features for richer semantic understanding. The approach enhances prototype generation for improved image feature matching and segmentation accuracy.

Keywords:
CLIPfew-shot learningfew-shot semantic segmentationmulti-modalsemantic segmentation

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Area of Science:

  • Computer Vision
  • Machine Learning
  • Artificial Intelligence

Background:

  • Visual-text pretrained models like CLIP excel in vision tasks.
  • CLIP's capabilities are being explored for pixel-level tasks, including few-shot segmentation.
  • Existing few-shot segmentation methods rely on support and query features for class prototypes.

Purpose of the Study:

  • To explore CLIP's potential in few-shot segmentation.
  • To propose a new method leveraging CLIP's text features for enhanced semantic information.
  • To improve prototype generation for better feature matching and segmentation accuracy.

Main Methods:

  • Utilize CLIP to extract text features for specific classes, incorporating them into the training process.
  • Propose a novel prototype generation method using multi-modal fusion of text and image features.
  • Generate adaptive query prototypes by combining image foreground/background information with multi-modal support prototypes.

Main Results:

  • The proposed method effectively extracts richer semantic information using text features.
  • Multi-modal fusion in prototype generation improves matching of query image features.
  • Achieved excellent results on PASCAL-5i and COCO-20i few-shot segmentation datasets.

Conclusions:

  • The study offers a new perspective on few-shot segmentation in multi-modal scenarios.
  • Integrating CLIP's text features significantly enhances segmentation performance.
  • The proposed method demonstrates state-of-the-art results, validating its effectiveness.