VOC危险化学品泄漏光谱视频识别算法研究
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国家重点研发油气勘探开发重大风险预防与控制研究项目(No.2021DJ6501)资助。


Research on spectral video recognition algorithm for leakage of VOC hazardous chemicals
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    摘要:

    针对挥发性有机物(Volatile Organic Compounds,VOCs)气体特征微弱、视觉显著性差、形态多变等难题,本文基于时-空-频联合去噪、多模态视差匹配模型,提出了一种高精度气体泄漏光谱视频识别算法。通过挖掘时-空-谱高维数据的本征信息来实现VOC气体的高精度识别,并利用多模块级联联合优化将传统方法的可解释性与深度学习的强大表征能力有机结合。最后,通过与国际先进气体监测设备森西亚和锐百凌进行同等条件的对比,可知所提出的气体泄漏成像方法对于低浓度的甲烷气体识别准确率提升了4625,误报降低至原来的1/3,验证了所提算法的有效性和可行性,为石化行业危险化学品泄漏监测提供了有力保障。

    Abstract:

    In response to the challenges of weak features,poor visual saliency,and variable morphology of Volatile Organic Compounds (VOCs),a high precision gas leakage spectral video recognition algorithm based on time space frequency joint denoising and multimodal disparity matching model is proposed in this paper.Firstly,the high precision identification of VOCs is achieved by mining the intrinsic information of high dimensional time space spectrum data,and then the interpretability of traditional methods is organically combined with the powerful representation ability of deep learning through multi module cascading joint optimization.Finally,by comparing the proposed gas leakage imaging method with international advanced gas monitoring equipment Sencia and Rebellion under the same conditions,it can be seen that the proposed gas leakage imaging method improves the accuracy of methane gas identification by 46.25% for low concentration,and reduces the false alarms to 1/3 of the original one,which verifies the validity and feasibility of the proposed algorithm,providing strong support for monitoring hazardous chemical leakage in the petrochemical industry.

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王雅杰,孙秉才,尤宝硕,王建筑,许斌. VOC危险化学品泄漏光谱视频识别算法研究[J].激光与红外,2024,54(7):1090~1096
WANG Ya-jie, SUN Bing-cai, YOU Bao-shuo, WANG Jian-zhu, XU Bin. Research on spectral video recognition algorithm for leakage of VOC hazardous chemicals[J]. LASER & INFRARED,2024,54(7):1090~1096

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  • 最后修改日期:2023-10-16
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  • 在线发布日期: 2024-07-23
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