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Compressive-sensing based super-resolution detection for leakage and uniform blockage in water pipelines

机译:基于压缩的基于超分辨率的水管道泄漏和均匀堵塞的超分辨率检测

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摘要

Reflectometry techniques for water pipeline defect detection suffer from low resolution problems since only low frequency waves can travel long distances in pipeline systems. In this paper, a method for estimating the super-resolved impulse response (IR) of the system from refiectometry measurements is established using a gridless compressive sensing (CS) framework. The proposed method provides super-resolution results by reconstructing the sparse IR consisting of a series of delta (δ) functions, whose time delays and amplitudes are estimated by solving the dual problem of CS optimization. The unique reconstruction of IR is guaranteed by a minimum separation between adjacent S functions, which closely relates to IR sparsity. This minimum separation requirement is validated theoretically, using the restricted isometry property, and numerically. It is proven that the IR of two discrete defects spaced less than a quarter of the minimum observation wavelength can be uniquely reconstructed with super-resolution. Systematic simulations and laboratory experiments show that the proposed method precisely recovers the IR of uniform blockages and leakages in water pipelines when the minimum separation is satisfied. With super-resolution IR, closely spaced blockage edges and leakages can be well distinguished and precisely localized. The size of both blockages and leakage holes can also be estimated with millimeter level accuracy.
机译:用于水管道缺陷检测的反射测量技术遭受低分辨率问题,因为只有低频波可以长距离管道系统行驶。在本文中,使用无缝的压缩感测(CS)框架建立一种估计系统的超分辨脉冲响应(IR)的方法。所提出的方法通过重建由一系列Δ(Δ)函数组成的稀疏IR来提供超分辨率的结果,其时间延迟和幅度通过解决CS优化的双重问题来估计。 IR的独特重建是通过与IR稀疏性密切相关的相邻S功能之间的最小分离来保证。理论上,这种最小分离要求在理论上验证,使用受限制的等距特性,数值。据证正,两个离散缺陷的IR间隔小于四分之一的最小观察波长,可以用超级分辨率重建。系统模拟和实验室实验表明,当满足最小分离时,所提出的方法精确地恢复水管内的均匀堵塞和泄漏。利用超分辨率IR,密切间隔的堵塞边缘和泄漏可以是良好的区别和精确的局部化。也可以以毫米级精度估算堵塞和泄漏孔的尺寸。

著录项

  • 来源
    《Mechanical systems and signal processing 》 |2021年第9期| 107686.1-107686.16| 共16页
  • 作者

    Zhao Li; Pedro Lee; Ross Murch;

  • 作者单位

    Department of Civil and Natural Resources Engineering University of Canterbury Christchurch New Zealand;

    Department of Civil and Natural Resources Engineering University of Canterbury Christchurch New Zealand;

    Department of Electronic and Computer Engineering The Hong Kong University of Science and Technology Hong Kong 999077 China Institute for Advanced Study the Hong Kong University of Science and Technology Hong Kong 999077 China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Compressive sensing; Super-resolution; Atomic norm; Defect detection; Water pipeline;

    机译:压缩感应;超级分辨率;原子标准;缺陷检测;水管道;

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