2022
DOI: 10.3390/en15217888
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Faults Feature Extraction Using Discrete Wavelet Transform and Artificial Neural Network for Induction Motor Availability Monitoring—Internet of Things Enabled Environment

Abstract: This paper presents the high contact resistance (HCR) and rotor bar faults by an extraction method for an induction motor using Discrete Wavelet Transform (DWT) and Artificial Neural Network (ANN). The root mean square (RMS) and mean features are obtained using DWT, and ANN is used for classification using activation functions. Activation provides output by assigning the specific input with respect to the transfer function according to the nature and type of the activation function. Method: The faulty conditio… Show more

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Cited by 12 publications
(7 citation statements)
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“…We followed the SLR approach [25] due to its systematic and prevalent use in literature reviews. It involves a review of the literature using a predefined set of steps to identify, analyze, and interpret the available research related to the given research question [25,26]. The complete scenario of the SLR is depicted in Figure 1.…”
Section: Methodsmentioning
confidence: 99%
See 1 more Smart Citation
“…We followed the SLR approach [25] due to its systematic and prevalent use in literature reviews. It involves a review of the literature using a predefined set of steps to identify, analyze, and interpret the available research related to the given research question [25,26]. The complete scenario of the SLR is depicted in Figure 1.…”
Section: Methodsmentioning
confidence: 99%
“…Searching for articles in online digital libraries is one of the critical steps in an SLR. First, we designed a search string according to the SLR recommendations [25]. For this purpose, we developed a search string consisting of the basic keywords along with necessary synonyms using different Boolean operators.…”
Section: Research Article Search Strategymentioning
confidence: 99%
“…These techniques are broadly categorized into statistical (ST), artificial intelligence (AI), and hybrid methods (HM) [ 11 ]. In ST-based methods, several algorithms are developed, including auto-regressive [ 12 ], Bayesian [ 13 ], Kalman [ 14 ], grey models [ 15 , 16 ], and the Markov chain model [ 17 ]. Additionally, MaatAllah et al [ 18 ] and Reikard et al [ 19 ] developed ST-based models for renewable power prediction.…”
Section: Introductionmentioning
confidence: 99%
“…Several computational prediction models to rapidly recognize enhancers in genes were developed in recent years as a result of the improvement of machine learning. These include Enhancer-LSTMAtt [7], CSI-ANN [8], EnhancerFinder [9], Chrome, GKM-SVM [10], DEEP [11], GenSVM [12], RFECS [13], EnhancerDBN [14], and BiRen [15]. Despite this, these methods merely act as a classification tool for enhancers that have been identified.…”
Section: Introductionmentioning
confidence: 99%