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首頁» 過刊瀏覽» 2016» Vol. 1» Issue (3) 407-416???? DOI : 10.3969/j.issn.2096-1693.2016.03.036
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自適應綜合指標的化工過程參數(shù)報警閾值優(yōu)化方法研究
羅靜,胡瑾秋
中國石油大學(北京)機械與儲運工程學院,,北京 102249
A study of adaptive composite-indicator alarm threshold optimization of chemical process parameters
LUO Jing, HU Jinqiu
School of Mechanical & Storage and Transportation Engineering, China University of Petroleum-Beijing, Beijing 102249, China

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摘要? 面臨日益復雜的化工過程生產(chǎn)裝置,提高化工過程報警系統(tǒng)的性能有著重要的指導意義,。傳統(tǒng)的化工過程參數(shù)報警閾值設置方法一般只考慮誤報警,并沒有同時考慮誤報警和漏報警,,導致報警系統(tǒng)產(chǎn)生大量的錯誤報警,。針對上述問題,提出自適應綜合指標的報警閾值優(yōu)化方法,。采用核密度估計方法,、基于歷史數(shù)據(jù)對過程報警狀態(tài)進行估計,綜合考慮誤報警率和漏報警率,從而建立優(yōu)化報警閾值的目標函數(shù),,將數(shù)值優(yōu)化算法內(nèi)嵌于粒子群算法形成新的算法進行求解,。案例分析中將此方法應用于TE過程,結(jié)果表明,,用此方法設置的報警閾值監(jiān)測誤報率為0,漏報率為0.78%,。與傳統(tǒng)的3σ法相比,,此方法能夠在保證低漏報率的條件下有效降低誤報警率,提高化工過程報警系統(tǒng)的性能,,減輕現(xiàn)場操作人員的工作壓力,,減少人員生命財產(chǎn)損失。
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關鍵詞 : 自適應; 綜合指標,; 誤報警,; 漏報警; 核密度估計,; 粒子群算法
Abstract

  Faced with increasingly complex chemical process plants, improving the performance of chemical process alarm systems is important. The traditional chemical process parameters alarm threshold setting method generally considers only false positives, but not taking both false positives and false negatives into account, leading to a lot of false alarms in alarm systems. To solve these problems, we used the alarm threshold optimization method based on an adaptive composite indicator. We used the kernel density estimation method to estimate the state of the process alarm based on historical data, integrating the false positives rate and false negatives rate to establish an objective function for optimal alarm thresholds. The numerical optimization algorithm was embedded in a particle swarm optimization algorithm, forming a new algorithm to solve the function. In case, this method was applied to the TE process. The results showed a false positive rate of 0, and a false negative rate of 0.78%. Compared with the traditional 3σ method, this method can effectively reduce the rate of false positives with a low false negative rate, and improve the performance of the chemical process alarm system. This will reduce stress on site operators, as well as the risks of loss of life and property.

Key words: adaptive ; composite-indicator ; false positives ; false negatives ; kernel density estimation ; particle swarm optimization algorithm
收稿日期: 2016-11-15 ????
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通訊作者: [email protected]
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羅靜,,胡瑾秋. 自適應綜合指標的化工過程參數(shù)報警閾值優(yōu)化方法研究[J]. 石油科學通報, 2016, 1(3): 407-416. LUO Jing, HU Jinqiu. A study of adaptive composite-indicator alarm threshold optimization of chemical process parameters . 石油科學通報, 2016, 1(3): 407-416.
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