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The Order Statistics Correlation Coefficient and PPMCC Fuse Non-Dimension in Fault Diagnosis of Rotating Petrochemical Unit
In this paper, the advantages of dimensionless indices and two types of correlation coefficients are combined and two methods are proposed to enhance the efficiency and accuracy of fault diagnosis in the petrochemical rotating machinery. The order statistic correlation coefficient and Pearson's...
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Published in: | IEEE sensors journal 2018-06, Vol.18 (11), p.4704-4714 |
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creator | Xiong, Jianbin Liang, Qiong Wan, Jiafu Zhang, Qinghua Chen, Xuehua Ma, Rubao |
description | In this paper, the advantages of dimensionless indices and two types of correlation coefficients are combined and two methods are proposed to enhance the efficiency and accuracy of fault diagnosis in the petrochemical rotating machinery. The order statistic correlation coefficient and Pearson's correlation coefficient are used to calculate the correlation coefficients of dimensionless indices, which are given by dimensionless algorithms after preprocessing the raw data. Different fault types are recognized by comparing the correlation coefficient and each dimensionless indicator. The numerical results revealed that the proposed method has the highest accuracy of 80% while the average of 50%, and an overall accuracy improvement of 10.89% compared with the conventional method. The results clearly indicate that the accuracy of the proposed fault diagnosis method is superior compared with its counterpart. |
doi_str_mv | 10.1109/JSEN.2018.2820170 |
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The order statistic correlation coefficient and Pearson's correlation coefficient are used to calculate the correlation coefficients of dimensionless indices, which are given by dimensionless algorithms after preprocessing the raw data. Different fault types are recognized by comparing the correlation coefficient and each dimensionless indicator. The numerical results revealed that the proposed method has the highest accuracy of 80% while the average of 50%, and an overall accuracy improvement of 10.89% compared with the conventional method. The results clearly indicate that the accuracy of the proposed fault diagnosis method is superior compared with its counterpart.</description><identifier>ISSN: 1530-437X</identifier><identifier>EISSN: 1558-1748</identifier><identifier>DOI: 10.1109/JSEN.2018.2820170</identifier><identifier>CODEN: ISJEAZ</identifier><language>eng</language><publisher>New York: IEEE</publisher><subject>Accuracy ; Correlation ; correlation coefficient ; Correlation coefficients ; correlation measure ; Data integration ; dimensionless index ; Dimensionless numbers ; Fault diagnosis ; Indexes ; Machinery ; Pearson’s product moment correlation coefficient (PPMCC) ; Petrochemicals ; Preprocessing ; Rotating machinery ; Sensors ; The order statistics correlation coefficient (OSCC)</subject><ispartof>IEEE sensors journal, 2018-06, Vol.18 (11), p.4704-4714</ispartof><rights>Copyright The Institute of Electrical and Electronics Engineers, Inc. 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The results clearly indicate that the accuracy of the proposed fault diagnosis method is superior compared with its counterpart.</description><subject>Accuracy</subject><subject>Correlation</subject><subject>correlation coefficient</subject><subject>Correlation coefficients</subject><subject>correlation measure</subject><subject>Data integration</subject><subject>dimensionless index</subject><subject>Dimensionless numbers</subject><subject>Fault diagnosis</subject><subject>Indexes</subject><subject>Machinery</subject><subject>Pearson’s product moment correlation coefficient (PPMCC)</subject><subject>Petrochemicals</subject><subject>Preprocessing</subject><subject>Rotating machinery</subject><subject>Sensors</subject><subject>The order statistics correlation coefficient (OSCC)</subject><issn>1530-437X</issn><issn>1558-1748</issn><fulltext>true</fulltext><rsrctype>article</rsrctype><creationdate>2018</creationdate><recordtype>article</recordtype><recordid>eNo9kF9PwjAUxRejiYh-AONLE5-H7dqu26MZ4J8gEIHEt6Vst1ACLbbdg_HLuwXi0zk3Oefc5BdF9wQPCMH50_tiNB0kmGSDJGtF4IuoRzjPYiJYdtl5imNGxdd1dOP9DmOSCy560e9yC2jmanBoEWTQPujKo8I6B_v2tKb1oJSuNJiApKnRfP5RFGjceEBTa-KhPoDxXVAbNJbNPqChlhtjvfbIKvRpu1mzQXMIzlZbOOhK7tHK6HAbXSm593B31n60Go-WxWs8mb28Fc-TuEpyGuJ1TmVaJZIymaapwApTBorleF3ztVR5zutU1DzPmACpaCrXBFSLoE4YV1wJ2o8eT7tHZ78b8KHc2caZ9mWZYCooYxyzNkVOqcpZ7x2o8uj0QbqfkuCyY1x2jMuOcXlm3HYeTh0NAP_5jCaCZyn9A8gleMo</recordid><startdate>20180601</startdate><enddate>20180601</enddate><creator>Xiong, Jianbin</creator><creator>Liang, Qiong</creator><creator>Wan, Jiafu</creator><creator>Zhang, Qinghua</creator><creator>Chen, Xuehua</creator><creator>Ma, Rubao</creator><general>IEEE</general><general>The Institute of Electrical and Electronics Engineers, Inc. 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The order statistic correlation coefficient and Pearson's correlation coefficient are used to calculate the correlation coefficients of dimensionless indices, which are given by dimensionless algorithms after preprocessing the raw data. Different fault types are recognized by comparing the correlation coefficient and each dimensionless indicator. The numerical results revealed that the proposed method has the highest accuracy of 80% while the average of 50%, and an overall accuracy improvement of 10.89% compared with the conventional method. The results clearly indicate that the accuracy of the proposed fault diagnosis method is superior compared with its counterpart.</abstract><cop>New York</cop><pub>IEEE</pub><doi>10.1109/JSEN.2018.2820170</doi><tpages>11</tpages><orcidid>https://orcid.org/0000-0001-9188-4179</orcidid><orcidid>https://orcid.org/0000-0002-2253-5546</orcidid></addata></record> |
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subjects | Accuracy Correlation correlation coefficient Correlation coefficients correlation measure Data integration dimensionless index Dimensionless numbers Fault diagnosis Indexes Machinery Pearson’s product moment correlation coefficient (PPMCC) Petrochemicals Preprocessing Rotating machinery Sensors The order statistics correlation coefficient (OSCC) |
title | The Order Statistics Correlation Coefficient and PPMCC Fuse Non-Dimension in Fault Diagnosis of Rotating Petrochemical Unit |
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