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4 months ago

CPDR: Towards Highly-Efficient Salient Object Detection via Crossed Post-decoder Refinement

Yijie Li; Hewei Wang; Aggelos Katsaggelos

CPDR: Towards Highly-Efficient Salient Object Detection via Crossed Post-decoder Refinement

Abstract

Most of the current salient object detection approaches use deeper networks with large backbones to produce more accurate predictions, which results in a significant increase in computational complexity. A great number of network designs follow the pure UNet and Feature Pyramid Network (FPN) architecture which has limited feature extraction and aggregation ability which motivated us to design a lightweight post-decoder refinement module, the crossed post-decoder refinement (CPDR) to enhance the feature representation of a standard FPN or U-Net framework. Specifically, we introduce the Attention Down Sample Fusion (ADF), which employs channel attention mechanisms with attention maps generated by high-level representation to refine the low-level features, and Attention Up Sample Fusion (AUF), leveraging the low-level information to guide the high-level features through spatial attention. Additionally, we proposed the Dual Attention Cross Fusion (DACF) upon ADFs and AUFs, which reduces the number of parameters while maintaining the performance. Experiments on five benchmark datasets demonstrate that our method outperforms previous state-of-the-art approaches.

Benchmarks

BenchmarkMethodologyMetrics
salient-object-detection-on-dut-omronCPDR-L
MAE: 0.048
mean E-Measure: 0.883
mean F-Measure: 0.782
salient-object-detection-on-duts-teCPDR-L
MAE: 0.034
mean E-Measure: 0.931
mean F-Measure: 0.853
salient-object-detection-on-ecssdCPDR-L
MAE: 0.033
mean E-Measure: 0.951
mean F-Measure: 0.921
salient-object-detection-on-hku-isCPDR-L
MAE: 0.028
mean E-Measure: 0.954
mean F-Measure: 0.908
salient-object-detection-on-pascal-sCPDR-L
MAE: 0.061
mean E-Measure: 0.905
mean F-Measure: 0.836

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CPDR: Towards Highly-Efficient Salient Object Detection via Crossed Post-decoder Refinement | Papers | HyperAI