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The Enhancement of Leak Detection Performance for Water Pipelines through the Renovation of Training Data

机译:通过更新培训数据来提高输水管道检漏性能

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摘要

Leakage detection is a fundamental problem in water management. Its importance is expressed not only in avoiding resource wastage, but also in protecting the environment and the safety of water resources. Therefore, early leak detection is increasingly urged. This paper used an intelligent leak detection method based on a model using statistical parameters extracted from acoustic emission (AE) signals. Since leak signals depend on many operation conditions, the training data in real-life situations usually has a small size. To solve the problem of a small sample size, a data improving method based on enhancing the generalization ability of the data was proposed. To evaluate the effectiveness of the proposed method, this study used the datasets obtained from two artificial leak cases which were generated by pinholes with diameters of 0.3 mm and 0.2 mm. Experimental results show that the employment of the additional data improving block in the leak detection scheme enhances the quality of leak detection in both terms of accuracy and stability.
机译:泄漏检测是水管理中的一个基本问题。它的重要性不仅体现在避免资源浪费上,而且还表现在保护环境和水资源安全方面。因此,越来越需要早期的泄漏检测。本文使用基于模型的智能泄漏检测方法,该模型使用从声发射(AE)信号中提取的统计参数。由于泄漏信号取决于许多操作条件,因此实际情况下的训练数据通常较小。为了解决样本量小的问题,提出了一种基于增强数据泛化能力的数据改进方法。为了评估该方法的有效性,本研究使用了从两个人工泄漏案例获得的数据集,这两个案例是由直径为0.3 mm和0.2 mm的针孔产生的。实验结果表明,在泄漏检测方案中使用额外的数据改进模块可以提高泄漏检测的准确性和稳定性。

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