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CIR-Net: Cross-modality Interaction and Refinement for RGB-D Salient Object Detection

About

Focusing on the issue of how to effectively capture and utilize cross-modality information in RGB-D salient object detection (SOD) task, we present a convolutional neural network (CNN) model, named CIR-Net, based on the novel cross-modality interaction and refinement. For the cross-modality interaction, 1) a progressive attention guided integration unit is proposed to sufficiently integrate RGB-D feature representations in the encoder stage, and 2) a convergence aggregation structure is proposed, which flows the RGB and depth decoding features into the corresponding RGB-D decoding streams via an importance gated fusion unit in the decoder stage. For the cross-modality refinement, we insert a refinement middleware structure between the encoder and the decoder, in which the RGB, depth, and RGB-D encoder features are further refined by successively using a self-modality attention refinement unit and a cross-modality weighting refinement unit. At last, with the gradually refined features, we predict the saliency map in the decoder stage. Extensive experiments on six popular RGB-D SOD benchmarks demonstrate that our network outperforms the state-of-the-art saliency detectors both qualitatively and quantitatively.

Runmin Cong, Qinwei Lin, Chen Zhang, Chongyi Li, Xiaochun Cao, Qingming Huang, Yao Zhao• 2022

Related benchmarks

TaskDatasetResultRank
RGB-D Salient Object DetectionSTERE
S-measure (Sα)0.914
198
RGB-D Salient Object DetectionLFSD (test)
S-measure87.5
36
Salient Object DetectionNLPR 54 (test)
M Score2.3
16
Salient Object DetectionDUT-RGBD 55 (test)
M Score0.031
16
Salient Object DetectionSIP 66 (test)
Mean Error (M)0.052
16
Salient Object DetectionNJUD 53 (test)
M (Mean Error)3.5
16
Salient Object DetectionSTEREO 67 (test)
Mean Error (M)0.039
16
Salient Object DetectionSSD 68 (test)
Mean Error (M)0.049
15
RGB-D Salient Object DetectionNJU2K (val)
S-measure0.925
11
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