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Democracy Does Matter: Comprehensive Feature Mining for Co-Salient Object Detection

Siyue Yu, Jimin Xiao, Bingfeng Zhang, Eng Gee Lim

20222022 IEEE/CVF Conference on Computer Vision and Pattern Recognition (CVPR)76 citationsDOI

Abstract

Co-salient object detection, with the target of detecting co-existed salient objects among a group of images, is gaining popularity. Recent works use the attention mechanism or extra information to aggregate common co-salient features, leading to incomplete even incorrect responses for target objects. In this paper, we aim to mine comprehensive co-salient features with democracy and reduce background interference without introducing any extra information. To achieve this, we design a democratic prototype generation module to generate democratic response maps, covering sufficient co-salient regions and thereby involving more shared attributes of co-salient objects. Then a comprehensive prototype based on the response maps can be generated as a guide for final prediction. To suppress the noisy background information in the prototype, we propose a self-contrastive learning module, where both positive and negative pairs are formed without relying on additional classification information. Besides, we also design a democratic feature enhancement module to further strengthen the co-salient features by readjusting attention values. Extensive experiments show that our model obtains better performance than previous state-of-the-art methods, especially on challenging real-world cases (e.g., for CoCA, we obtain a gain of 2.0% for MAE, 5.4% for maximum F-measure, 2.3% for maximum E-measure, and 3.7% for S-measure) under the same settings. Source code is available at https://github.com/siyueyu/DCFM.

Topics & Concepts

SalientFeature (linguistics)Computer scienceArtificial intelligenceMeasure (data warehouse)Object detectionPattern recognition (psychology)Code (set theory)Object (grammar)Feature extractionSource codeDemocracyData miningComputer visionPolitical scienceLinguisticsProgramming languagePhilosophySet (abstract data type)PoliticsLawVisual Attention and Saliency DetectionAdvanced Image and Video Retrieval TechniquesFace Recognition and Perception
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