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摘要:
Synchronous chip seal is an advanced road constructing technology,and the gravel coverage rate is an important indicator of the construction quality.In this paper,a novel approach for gravel coverage rate measurement is proposed based on deep learning.Convolutional neural network (CNN) is used to segment the image of ground covered with gravels,and the gravel coverage rate is computed by the percentage of gravel pixels in the segmented image.The gravel coverage rate dataset for model training and testing is built.The performance of fully convolutional neural network (FCN) and U-Net model in the dataset is tested.A better model named GravelNet is constructed based on U-Net.The scaled exponential linear unit (SELU) is employed in the GravelNet to replace the popular combination of rectified linear unit (ReLU) and batch normalization (BN).Data augmentation and alpha dropout are performed to reduce overtitting.The experimental results demonstrate the effectiveness and accuracy of our proposed method.Our trained GravelNet achieves the mean gravel coverage rate error of 0.35% on test dataset.
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篇名 Gravel coverage rate measurement in synchronous chip seal based on deep convolutional neural network
来源期刊 光电子快报(英文版) 学科
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年,卷(期) 2018,(6) 所属期刊栏目
研究方向 页码范围 447-451
页数 5页 分类号
字数 语种 英文
DOI 10.1007/s11801-018-8017-x
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期刊影响力
光电子快报(英文版)
双月刊
1673-1905
12-1370/TN
16开
天津市南开区红旗南路263号
2005
eng
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1956
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