Identification Method of Shaft Orbit in Rotating Machines Based on Accurate Fourier Height Functions Descriptors

In this paper, an algorithm based on two novel shape descriptors and support vector machine (SVM) is proposed to improve the recognition accuracy and speed of shaft orbits of rotating machines. Firstly, two novel shape descriptors, respectively, named accurate Fourier height functions 1 (AFHF1) and...

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Main Authors: Bo Wu, Songlin Feng, Guodong Sun, Liang Xu, Chenghan Ai
Format: Article
Language:English
Published: Hindawi Limited 2018-01-01
Series:Shock and Vibration
Online Access:http://dx.doi.org/10.1155/2018/3737250
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spelling doaj-f76a424e1ae24ac39037c242b6946d782020-11-25T01:49:58ZengHindawi LimitedShock and Vibration1070-96221875-92032018-01-01201810.1155/2018/37372503737250Identification Method of Shaft Orbit in Rotating Machines Based on Accurate Fourier Height Functions DescriptorsBo Wu0Songlin Feng1Guodong Sun2Liang Xu3Chenghan Ai4Shanghai Advanced Research Institute, Chinese Academy of Sciences, Shanghai 201210, ChinaShanghai Advanced Research Institute, Chinese Academy of Sciences, Shanghai 201210, ChinaSchool of Mechanical Engineering, Hubei University of Technology, Wuhan 430068, ChinaSchool of Mechanical Engineering, Hubei University of Technology, Wuhan 430068, ChinaSchool of Mechanical Engineering, Hubei University of Technology, Wuhan 430068, ChinaIn this paper, an algorithm based on two novel shape descriptors and support vector machine (SVM) is proposed to improve the recognition accuracy and speed of shaft orbits of rotating machines. Firstly, two novel shape descriptors, respectively, named accurate Fourier height functions 1 (AFHF1) and accurate Fourier height functions 2 (AFHF2) are presented based on height function (HF) and Fourier transformation. Both AFHF1 and AFHF2 shape descriptors are constant to similarity transforms and also have intrinsic invariance to the starting point change and are more compacted than HF. Therefore, they perform well on the global or local features of the contours of shaft orbits. Then, the AFHF1 and AFHF2 shape descriptors are utilized to extract features of shaft orbits in the simulated dataset and measured dataset. Taking extracted feature vectors as the input, SVM is adopted in order to classify the fault types according to the shapes of shaft orbits. Finally, a series of descriptors including shape context (SC), inner-distance shape context (IDSC), triangular centroid distances (TCDs), and HF were compared to verify the performance of the proposed AFHF1 and AFHF2 shape descriptors. The average accuracy of our method in simulated dataset and measured dataset are all higher than 99.83%, the average recognition time of each sample is no more than 19 milliseconds. The experiments demonstrate that the proposed method has the best recognition accuracy and real-time and antinoise performance.http://dx.doi.org/10.1155/2018/3737250
collection DOAJ
language English
format Article
sources DOAJ
author Bo Wu
Songlin Feng
Guodong Sun
Liang Xu
Chenghan Ai
spellingShingle Bo Wu
Songlin Feng
Guodong Sun
Liang Xu
Chenghan Ai
Identification Method of Shaft Orbit in Rotating Machines Based on Accurate Fourier Height Functions Descriptors
Shock and Vibration
author_facet Bo Wu
Songlin Feng
Guodong Sun
Liang Xu
Chenghan Ai
author_sort Bo Wu
title Identification Method of Shaft Orbit in Rotating Machines Based on Accurate Fourier Height Functions Descriptors
title_short Identification Method of Shaft Orbit in Rotating Machines Based on Accurate Fourier Height Functions Descriptors
title_full Identification Method of Shaft Orbit in Rotating Machines Based on Accurate Fourier Height Functions Descriptors
title_fullStr Identification Method of Shaft Orbit in Rotating Machines Based on Accurate Fourier Height Functions Descriptors
title_full_unstemmed Identification Method of Shaft Orbit in Rotating Machines Based on Accurate Fourier Height Functions Descriptors
title_sort identification method of shaft orbit in rotating machines based on accurate fourier height functions descriptors
publisher Hindawi Limited
series Shock and Vibration
issn 1070-9622
1875-9203
publishDate 2018-01-01
description In this paper, an algorithm based on two novel shape descriptors and support vector machine (SVM) is proposed to improve the recognition accuracy and speed of shaft orbits of rotating machines. Firstly, two novel shape descriptors, respectively, named accurate Fourier height functions 1 (AFHF1) and accurate Fourier height functions 2 (AFHF2) are presented based on height function (HF) and Fourier transformation. Both AFHF1 and AFHF2 shape descriptors are constant to similarity transforms and also have intrinsic invariance to the starting point change and are more compacted than HF. Therefore, they perform well on the global or local features of the contours of shaft orbits. Then, the AFHF1 and AFHF2 shape descriptors are utilized to extract features of shaft orbits in the simulated dataset and measured dataset. Taking extracted feature vectors as the input, SVM is adopted in order to classify the fault types according to the shapes of shaft orbits. Finally, a series of descriptors including shape context (SC), inner-distance shape context (IDSC), triangular centroid distances (TCDs), and HF were compared to verify the performance of the proposed AFHF1 and AFHF2 shape descriptors. The average accuracy of our method in simulated dataset and measured dataset are all higher than 99.83%, the average recognition time of each sample is no more than 19 milliseconds. The experiments demonstrate that the proposed method has the best recognition accuracy and real-time and antinoise performance.
url http://dx.doi.org/10.1155/2018/3737250
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