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ARTIFICIAL INTELLIGENCE AND SIGNAL PROCESSING FOR INFRASTRUCTURE ASSESSMENT

机译:基础设施评估的人工智能和信号处理

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摘要

The Ground Penetrating Radar (GPR) is being recognized as an effective nondestructive evaluation technique to improve the inspection process. However, data interpretation and complexity of the results impose some limitations on the practicality of using this technique. This is mainly due to the need of a trained experienced person to interpret images obtained by the GPR system. In this paper, an algorithm to classify and assess the condition of infrastructures utilizing image processing and pattern recognition techniques is discussed. Features extracted form a dataset of images of defected and healthy slabs are used to train a computer vision based system while another dataset is used to evaluate the proposed algorithm. Initial results show that the proposed algorithm is able to detect the existence of defects with about 77% success rate.
机译:探地雷达(GPR)被公认为是改善检查过程的有效无损评估技术。但是,数据解释和结果的复杂性对使用此技术的实用性施加了一些限制。这主要是由于需要训练有素的专业人员来解释GPR系统获得的图像。本文讨论了一种利用图像处理和模式识别技术对基础设施条件进行分类和评估的算法。从缺陷和健康平板图像数据集中提取的特征用于训练基于计算机视觉的系统,而另一个数据集用于评估所提出的算法。初步结果表明,该算法能够以77%的成功率检测出缺陷的存在。

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