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Distilling Spatially-Heterogeneous Distortion Perception for Blind Image Quality Assessment

  • Xudong Li
  • , Wenjie Nie
  • , Yan Zhang
  • , Runze Hu
  • , Ke Li
  • , Xiawu Zheng
  • , Liujuan Cao*
  • *此作品的通讯作者
  • Xiamen University
  • Beijing Institute of Technology
  • Tencent

科研成果: 期刊稿件会议文章同行评审

摘要

In the Blind Image Quality Assessment (BIQA) field, accurately assessing the quality of authentically distorted images presents a substantial challenge due to the diverse distortion types in natural settings. Existing state-of-the-art IQA methods mix a sequence of distortions into entire images to establish global distortion priors, but are inadequate for authentic images with spatially varied distortions. To address this, we introduce a novel IQA framework that employs knowledge distillation tailored to perceive spatially heterogeneous distortions, enhancing quality-distortion awareness. Specifically, we introduce a novel Block-wise Degradation Modelling approach that applies distinct distortions to different spatial blocks of an image, thereby expanding local distortion priors. Following this, we present a Block-wise Aggregation and Filtering module that enables fine-grained attention to the quality information within different distortion areas of the image. Furthermore, to effectively capture the complex relationships between distortions across different regions while preserving overall quality perception, we introduce Contrastive Knowledge Distillation to enhance the model's ability to discriminate between different types of distortions and Affinity Knowledge Distillation to model the correlation among distortions in different regions. Extensive experiments on standard BIQA datasets demonstrate the effectiveness and competitiveness of the proposed method.

源语言英语
页(从-至)2344-2354
页数11
期刊Proceedings of the IEEE Computer Society Conference on Computer Vision and Pattern Recognition
DOI
出版状态已出版 - 2025
已对外发布
活动2025 IEEE/CVF Conference on Computer Vision and Pattern Recognition, CVPR 2025 - Nashville, 美国
期限: 11 6月 202515 6月 2025

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