论文成果
Leakage diagnosis of natural gas pipeline based on multi-source heterogeneous information fusion
摘要:Due to long-term service, natural gas pipelines are prone to corrosion, resulting in pipeline leakage failure and environmental pollution. However, it is challenging to provide an accurate leakage diagnosis for existing singlesensor detection techniques. In this paper, we propose a multi-source heterogeneous information fusion method for the complementary fusion of laser optical sensing and weak magnetic technologies. Firstly, the laser and weak magnetic signals are converted into two-dimensional images using continuous wavelet transform (CWT) and then fused in data-level. Secondly, deep reinforcement learning (DRL) combines the perception ability of deep learning and the decision-making ability of reinforcement learning. Consequently, the deep Q-network (DQN) method is proposed as a novel method for leakage diagnosis of natural gas pipelines. Then, an improved capsule network based on dense block is designed for feature enhancement. Finally, experimental results verify the effectiveness of the proposed method in recognizing the formed leakage and potential leakage. Moreover, the results demonstrate that the proposed method outperforms single-sensor-based and state-of-the-art methods in terms of diagnostic accuracy and cross-domain transfer tasks. This will provide a theoretical basis for pipeline leakage failure prevention and maintenance decision-making.
关键字:Pipeline leakage diagnosis; Potential leakage; Multi-source heterogeneous information fusion; Deep reinforcement learning; Deep Q-network
ISSN号:0308-0161
卷、期、页:卷209
发表日期:2024-06-01
影响因子:0.000000
期刊分区(SCI为中科院分区):二区
收录情况:SCI(科学引文索引印刷版),EI(工程索引),SCIE(科学引文索引网络版)
发表期刊名称:INTERNATIONAL JOURNAL OF PRESSURE VESSELS AND PIPING
通讯作者:苗兴园
第一作者:赵弘
论文类型:期刊论文
论文概要:苗兴园,赵弘,Leakage diagnosis of natural gas pipeline based on multi-source heterogeneous information fusion,INTERNATIONAL JOURNAL OF PRESSURE VESSELS AND PIPING,2024,卷209
论文题目:Leakage diagnosis of natural gas pipeline based on multi-source heterogeneous information fusion
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