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RSS FeedsRemote Sensing, Vol. 14, Pages 3892: Automatic Detection of Pothole Distress in Asphalt Pavement Using Improved Convolutional Neural Networks (Remote Sensing)

 
 

11 august 2022 13:10:56

 
Remote Sensing, Vol. 14, Pages 3892: Automatic Detection of Pothole Distress in Asphalt Pavement Using Improved Convolutional Neural Networks (Remote Sensing)
 


To realize the intelligent and accurate measurement of pavement surface potholes, an improved You Only Look Once version three (YOLOv3) object detection model combining data augmentation and structure optimization is proposed in this study. First, color adjustment was used to enhance the image contrast, and data augmentation was performed through geometric transformation. Pothole categories were subdivided into P1 and P2 on the basis of whether or not there was water. Then, the Residual Network (ResNet101) and complete IoU (CIoU) loss were used to optimize the structure of the YOLOv3 model, and the K-Means++ algorithm was used to cluster and modify the multiscale anchor sizes. Lastly, the robustness of the proposed model was assessed by generating adversarial examples. Experimental results demonstrated that the proposed model was significantly improved compared with the original YOLOv3 model; the detection mean average precision (mAP) was 89.3%, and the F1-score was 86.5%. On the attacked testing dataset, the overall mAP value reached 81.2% (−8.1%), which shows that this proposed model performed well on samples after random occlusion and adding noise interference, proving good robustness.


 
110 viewsCategory: Geology, Physics
 
Remote Sensing, Vol. 14, Pages 3889: Crop Classification Based on GDSSM-CNN Using Multi-Temporal RADARSAT-2 SAR with Limited Labeled Data (Remote Sensing)
Remote Sensing, Vol. 14, Pages 3893: A Ship Discrimination Method Based on High-Frequency Electromagnetic Theory (Remote Sensing)
 
 
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