Diesel engine fault diagnosis data enhancement method based on decomposition-generation-reconstruction generation strategy
The invention discloses a diesel engine fault diagnosis data enhancement method based on a decomposition-generation-reconstruction generation strategy, and is suitable for the field of fault diagnosis of diesel engine equipment. According to the method, the generation task of the complex multi-sourc...
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creator | JIANG ZHINONG HUANG ANZHENG MAO ZHIWEI YE LIKAI ZHANG JINJIE |
description | The invention discloses a diesel engine fault diagnosis data enhancement method based on a decomposition-generation-reconstruction generation strategy, and is suitable for the field of fault diagnosis of diesel engine equipment. According to the method, the generation task of the complex multi-source impact signal is simplified, and the purpose is to improve the quality and diversity of the generated signal from more detail and local levels. Firstly, standardized single-impact sub-signals of different fault types are effectively extracted from a multi-source impact signal through a shared window variational time domain decomposition method, and the comparability between the sub-signals is ensured. Then, a multi-condition variational adversarial auto-encoder network is constructed, fault types and window labels are used as condition information, the center of potential space vectors is accurately constructed, and therefore multi-label type high-quality single-impact sub-signals are generated; finally, the gene |
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According to the method, the generation task of the complex multi-source impact signal is simplified, and the purpose is to improve the quality and diversity of the generated signal from more detail and local levels. Firstly, standardized single-impact sub-signals of different fault types are effectively extracted from a multi-source impact signal through a shared window variational time domain decomposition method, and the comparability between the sub-signals is ensured. 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According to the method, the generation task of the complex multi-source impact signal is simplified, and the purpose is to improve the quality and diversity of the generated signal from more detail and local levels. Firstly, standardized single-impact sub-signals of different fault types are effectively extracted from a multi-source impact signal through a shared window variational time domain decomposition method, and the comparability between the sub-signals is ensured. Then, a multi-condition variational adversarial auto-encoder network is constructed, fault types and window labels are used as condition information, the center of potential space vectors is accurately constructed, and therefore multi-label type high-quality single-impact sub-signals are generated; finally, the gene</abstract><oa>free_for_read</oa></addata></record> |
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subjects | CALCULATING COMPUTER SYSTEMS BASED ON SPECIFIC COMPUTATIONAL MODELS COMPUTING COUNTING ELECTRIC DIGITAL DATA PROCESSING MEASURING PHYSICS TESTING TESTING STATIC OR DYNAMIC BALANCE OF MACHINES ORSTRUCTURES TESTING STRUCTURES OR APPARATUS NOT OTHERWISE PROVIDED FOR |
title | Diesel engine fault diagnosis data enhancement method based on decomposition-generation-reconstruction generation strategy |
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