Application of Machine Learning in wireless Sensor Network

Mahendra Prasad Nath, S. Mohanty, S. Priyadarshini
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引用次数: 10

Abstract

Wireless Sensor Networks (WSNs) find broad range of adoration and wide spread uses in various applications. In such networks, the deployed sensors trap and transfer the data intellectually to the base station that is the ultimate destination. This paper briefs about the various applications of machine learning in sensor networks. The Principal Component Analysis (PCA) along with k-means clustering strategies, used in case of unsupervised learning, are discussed. A discussion on different functional challenges occurring in case of sensor networks is also presented.
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机器学习在无线传感器网络中的应用
无线传感器网络(WSNs)在各种应用中得到了广泛的推崇和广泛的应用。在这样的网络中,部署的传感器捕获并智能地将数据传输到作为最终目的地的基站。本文简要介绍了机器学习在传感器网络中的各种应用。讨论了在无监督学习中使用的主成分分析(PCA)和k-means聚类策略。对传感器网络中出现的不同功能挑战进行了讨论。
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