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An adaptive method for water pipeline leak localization

机译:水管道泄漏定位的自适应方法

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A common method for leak localization in water pipelines is the use of cross correlation on two measured acoustic signals located on either side of a leak. However, in practice, leak signals are inevitably corrupted with non-leak sounds and noise. This is due to the complicated pipeline environment that makes time delay estimation between the sensors inaccurate. In addition, time delay errors further affect leak localization accuracy, and then reduce the reliability of the system. In this paper, a new adaptive leak detection method that combines BP neural networks with GCC (generalized cross correlation) is proposed. The new proposed method can discriminate the leak signal from non-leak acoustic sources and noise, and improve leak localization accuracy. Simulation results indicates that the proposed leak detection method can be used to localize a leak in a buried water pipeline and achieved a correct detection rate of 92.5%.
机译:在水管道中泄漏定位的常用方法是在泄漏两侧的两个测量声信号上使用互相关。 然而,在实践中,泄漏信号不可避免地被损坏,并且具有非泄漏声音和噪声。 这是由于复杂的流水线环境,使传感器之间的时间延迟估计不准确。 此外,时间延迟误差进一步影响泄漏定位精度,然后降低系统的可靠性。 本文提出了一种结合BP神经网络与GCC(广义互相关)结合的新的自适应泄漏检测方法。 新的提出方法可以区分来自非泄漏声源和噪声的泄漏信号,并提高泄漏定位精度。 仿真结果表明,所提出的泄漏检测方法可用于在埋地水管道中定位泄漏,并达到92.5%的正确检测率。

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