2020
DOI: 10.1109/access.2020.2971969
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Back Propagation Neural Network Based Cluster Head Identification in MIMO Sensor Networks for Intelligent Transportation Systems

Abstract: Wireless Sensor Network (WSN) is an essential technology for the Internet-of-Things (IoT) and intelligence-based applications. In the case of Intelligent Transportation Systems (ITS), the WSNs play an important role in safety and efficient traffic management. Therefore, there is enormous demand for energy efficient WSNs for dynamic resource allocation in vehicles and infrastructures. This work presents a Multi-Input Multi-Output (MIMO) technique model in WSNs, which addresses the Cluster Head (CH) recognition … Show more

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Cited by 60 publications
(34 citation statements)
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“…Finally, the weights (w) are updated using the rule as: (C). Artificial neural networks (ANNs) [47][48][49]: ANN is inspired by the human brain architecture learning mechanism. The basic unit of AAN is perceptron, which is equivalent to a neuron in the human brain as shown in Figure 6.…”
Section: Classificationmentioning
confidence: 99%
“…Finally, the weights (w) are updated using the rule as: (C). Artificial neural networks (ANNs) [47][48][49]: ANN is inspired by the human brain architecture learning mechanism. The basic unit of AAN is perceptron, which is equivalent to a neuron in the human brain as shown in Figure 6.…”
Section: Classificationmentioning
confidence: 99%
“…The model is estimated with various terms in unknown network population like identifying the neighbour thorough announcement and its efficiency, establishing, completion time, and slot wasted ratio time [32]. Wireless networks play a vital role in the Internet of Things in terms of safety and intelligent transport system and efficient energy conservation [33] for vehicle and infrastructure management using Multi-Input Multi-Output (MIMO) schemes by employing backpropagation neural network.…”
Section: Related Workmentioning
confidence: 99%
“…If a uniform prior density P ( w | β , A ) is assumed for regularization parameters β and γ ,then maximizing of posterior is obtained by maximization of likelihood function P ( D | w , γ , A ) 56 . Normalization factor from Equation (9) can be obtained by Equation (14) as P()|,,DβγA=P()|,,DwγAP()|,wβAP()|,,,wDβγA0.25em …”
Section: Optimal Bra‐based Lf Strategy Incorporating Pccmentioning
confidence: 99%