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A comparison of multi-resolution methods for detection and isolation of pavement distress

机译:检测和隔离路面遇险的多分辨率方法的比较

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摘要

The research presented in this article is aimed at the development of an automated imaging system for distress detection and isolation in asphalt pavement distress obtained from pavement image acquisition system (PIAS). This article focuses on comparing the discriminating power of several multi-resolution texture analysis techniques using wavelet, ridgelet, and curvelet-based texture descriptors. The approach consists of four steps: Image collection, segmentation of regions of interest (ROI), extraction of the most discriminative texture features, creation of a classifier that automatically identifies the pavement distress, and storage. Tests comparing the wavelet, ridgelet, and curvelet texture features indicated that curvelet-based signatures outperform all other multi-resolution techniques for pothole distress, yielding accuracy rates in the 97.9%. Ridgelet-based signatures outperform all other multi-resolution techniques for cracking distress, yielding accuracy rates in the 93.6-96.4% rate.
机译:本文提出的研究旨在开发一种自动成像系统,用于从路面图像采集系统(PIAS)获得的沥青路面遇险中的遇险检测和隔离。本文着重比较使用小波,脊波和基于Curvelet的纹理描述符对几种多分辨率纹理分析技术的区分能力。该方法包括四个步骤:图像收集,感兴趣区域(ROI)的分割,最具区别性的纹理特征的提取,自动识别路面遇险情况的分类器的创建和存储。对小波,脊波和Curvelet纹理特征进行比较的测试表明,基于Curvelet的特征优于其他所有针对坑洼困扰的多分辨率技术,其准确率高达97.9%。基于Ridgelet的签名在破解遇险方面优于所有其他多分辨率技术,其准确率高达93.6-96.4%。

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