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Multiscale Balanced-Attention Interactive Network for Salient Object Detection
by
Deng, Dexiang
, Chen, Rui
, Yang, Haiyan
in
Accuracy
/ Algorithms
/ balanced attention model
/ bi-directional propagation strategy
/ Data integration
/ Datasets
/ Image retrieval
/ interactive residual model
/ Mathematics
/ Modules
/ Noise
/ Object recognition
/ Salience
/ salient object detection
/ Semantics
2022
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Multiscale Balanced-Attention Interactive Network for Salient Object Detection
by
Deng, Dexiang
, Chen, Rui
, Yang, Haiyan
in
Accuracy
/ Algorithms
/ balanced attention model
/ bi-directional propagation strategy
/ Data integration
/ Datasets
/ Image retrieval
/ interactive residual model
/ Mathematics
/ Modules
/ Noise
/ Object recognition
/ Salience
/ salient object detection
/ Semantics
2022
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Do you wish to request the book?
Multiscale Balanced-Attention Interactive Network for Salient Object Detection
by
Deng, Dexiang
, Chen, Rui
, Yang, Haiyan
in
Accuracy
/ Algorithms
/ balanced attention model
/ bi-directional propagation strategy
/ Data integration
/ Datasets
/ Image retrieval
/ interactive residual model
/ Mathematics
/ Modules
/ Noise
/ Object recognition
/ Salience
/ salient object detection
/ Semantics
2022
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Multiscale Balanced-Attention Interactive Network for Salient Object Detection
Journal Article
Multiscale Balanced-Attention Interactive Network for Salient Object Detection
2022
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Overview
The purpose of saliency detection is to detect significant regions in the image. Great progress on salient object detection has been made using from deep-learning frameworks. How to effectively extract and integrate multiscale information with different depths is an open problem for salient object detection. In this paper, we propose a processing mechanism based on a balanced attention module and interactive residual module. The mechanism addressed the acquisition of the multiscale features by capturing shallow and deep context information. For effective information fusion, a modified bi-directional propagation strategy was adopted. Finally, we used the fused multiscale information to predict saliency features, which were combined to generate the final saliency maps. The experimental results on five benchmark datasets show that the method is on a par with the state of the art for image saliency datasets, especially on the PASCAL-S datasets, where the MAE reaches 0.092, and on the DUT-OMROM datasets, where the F-measure reaches 0.763.
Publisher
MDPI AG
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