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Dichotomous Image Segmentation with Frequency Priors

Yan Zhou, Bo Dong, Yuanfeng Wu, Wentao Zhu, Geng Chen, Yanning Zhang

202314 citationsDOIOpen Access PDF

Abstract

Dichotomous image segmentation (DIS) has a wide range of real-world applications and gained increasing research attention in recent years. In this paper, we propose to tackle DIS with informative frequency priors. Our model, called FP-DIS, stems from the fact that prior knowledge in the frequency domain can provide valuable cues to identify fine-grained object boundaries. Specifically, we propose a frequency prior generator to jointly utilize a fixed filter and learnable filters to extract informative frequency priors. Before embedding the frequency priors into the network, we first harmonize the multi-scale side-out features to reduce their heterogeneity. This is achieved by our feature harmonization module, which is based on a gating mechanism to harmonize the grouped features. Finally, we propose a frequency prior embedding module to embed the frequency priors into multi-scale features through an adaptive modulation strategy. Extensive experiments on the benchmark dataset, DIS5K, demonstrate that our FP-DIS outperforms state-of-the-art methods by a large margin in terms of key evaluation metrics.

Topics & Concepts

Prior probabilityComputer scienceEmbeddingArtificial intelligenceFeature (linguistics)Benchmark (surveying)Margin (machine learning)Pattern recognition (psychology)Frequency domainSegmentationFilter (signal processing)Range (aeronautics)Image segmentationFeature extractionComputer visionMachine learningBayesian probabilityGeographyLinguisticsGeodesyComposite materialPhilosophyMaterials scienceAdvanced Neural Network ApplicationsVisual Attention and Saliency DetectionMedical Image Segmentation Techniques
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