2021
DOI: 10.1155/2021/6680640
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Rough Set Neural Network Feature Extraction and Pattern Recognition of Shaft Orbits Based on the Zernike Moment

Abstract: In the shaft axis monitoring of hydrogenerating unit condition monitoring and fault diagnosis, the shaft orbit is intuitive and comprehensively reflects the unit operation state, and different shaft orbits correspond to different fault types, which can accurately indicate a system vibration fault. Shaft orbit identification has important significance for vibration fault diagnosis. In getting the feature extraction and pattern recognition of a shaft orbit, the Zernike moment is better than the Hu moment; it has… Show more

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Cited by 4 publications
(3 citation statements)
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“…e main implementation process is to obtain hidden valuable data through data mining techniques such as association rule mode, classification mode, regression mode, and clustering mode [20,21]. Use the methods of induction, classification, extraction, etc.…”
Section: Personalized Recommendationsmentioning
confidence: 99%
“…e main implementation process is to obtain hidden valuable data through data mining techniques such as association rule mode, classification mode, regression mode, and clustering mode [20,21]. Use the methods of induction, classification, extraction, etc.…”
Section: Personalized Recommendationsmentioning
confidence: 99%
“…Among the patterns of the ceramic body, some of the patterns are line drafts, and the background is similar to a solid color; this part of the pattern is cut out, as shown in Figure 4 . It is conducive to the reuse of ceramic patterns, and it is also convenient for copying [ 19 , 20 ]. To extract texture patterns from images, it is necessary to use image matting technology; that is, in a relatively clean background, extract the required foreground texture images, and remove the useless background image; that is, put the required part of the image, an image processing algorithm separated from other parts [ 21 ].…”
Section: Image Registrationmentioning
confidence: 99%
“…He extended previous research from single particle to multi-particle, studying multi-granularity rough set theory from the perspective of three-way decision. He proposed a ve-valued semantics for a multilinear rough set model generating a nondeterministic matrix [3]. Hu proposed a set method based on rough set theory for incremental rough clustering.…”
Section: Introductionmentioning
confidence: 99%