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Osornio-Rios, RA.; Cueva-Perez, I.; Alvarado-Hernandez, AI.; Dunai, L.; Zamudio-Ramirez, I.; Antonino-Daviu, JA. (2024). FPGA-Microprocessor Based Sensor for Faults Detection in Induction Motors Using Time-Frequency and Machine Learning Methods. Sensors. 24(8). https://doi.org/10.3390/s24082653
Por favor, use este identificador para citar o enlazar este ítem: http://hdl.handle.net/10251/205093
Título: | FPGA-Microprocessor Based Sensor for Faults Detection in Induction Motors Using Time-Frequency and Machine Learning Methods | |
Autor: | Osornio-Rios, Roque Alfredo Cueva-Perez, Isaias Alvarado-Hernandez, Alvaro Ivan Zamudio-Ramirez, Israel | |
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[EN] Induction motors (IM) play a fundamental role in the industrial sector because they are robust, efficient, low-cost machines. Changes in the environment, installation errors, or modifications to working conditions can ...[+]
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Derechos de uso: | Reconocimiento (by) | |
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Versión del editor: | https://doi.org/10.3390/s24082653 | |
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