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Multi sensor data fusion approach for automatic honeycomb detection in concrete

机译:用于混凝土蜂窝自动检测的多传感器数据融合方法

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摘要

We present a systematic approach for fusion of multi-sensory nondestructive testing data. Our data set consists of impact-echo, ultrasonic pulse echo and ground penetrating radar data collected on a large-scale concrete specimen with built-in honeycombing defects. From each data set, the most significant signatures of honeycombs were extracted in the form of features. We applied two simple data fusion algorithms to the data: Dempster's rule of combination and the Hadamard product. The performance of the fusion rules versus the single-sensor testing was evaluated. The fusion rules exhibit a slight improvement of false alarm rate over the best single sensor. (C) 2015 Elsevier Ltd. All rights reserved.
机译:我们提出了一种融合多传感器无损检测数据的系统方法。我们的数据集由冲击回波,超声脉冲回波和探地雷达数据组成,这些数据是在具有内置蜂窝缺陷的大型混凝土标本上收集的。从每个数据集中,以特征的形式提取蜂窝的最重要特征。我们对数据应用了两种简单的数据融合算法:Dempster组合规则和Hadamard乘积。评估了融合规则相对于单传感器测试的性能。与最佳的单个传感器相比,融合规则的误报率略有提高。 (C)2015 Elsevier Ltd.保留所有权利。

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