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   系統號碼967651
   書刊名Learning algorithms for Internet of Things [electronic resource] : applying Python tools to improve data collection use for system performance /
   主要著者Kanagachidambaresan, G. R.
   其他著者Bharathi, N.
   出版項Berkeley, CA : Imprint: Apress, 2024.
   索書號TK5105.8857
   ISBN9798868805301
   標題Internet of things.
Machine learning.
Internet of Things.
Communications Engineering, Networks.
Python.
   電子資源https://doi.org/10.1007/979-8-8688-0530-1
   叢書名Maker innovations series,2948-2550;Maker innovations series.2948-2550
   
    
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內容簡介The advent of Internet of Things (IoT) has paved the way for sensing the environment and smartly responding. This can be further improved by enabling intelligence to the system with the support of machine learning and deep learning techniques. This book describes learning algorithms that can be applied to IoT-based, real-time applications and improve the utilization of data collected and the overall performance of the system. Many societal challenges and problems can be resolved using a better amalgamation of IoT and learning algorithms. "Smartness" is the buzzword that is realized only with the help of learning algorithms. In addition, it supports researchers with code snippets that focus on the implementation and performance of learning algorithms on IoT based applications such as healthcare, agriculture, transportation, etc. These snippets include Python packages such as Scipy, Scikit-learn, Theano, TensorFlow, Keras, PyTorch, and more. Learning Algorithms for Internet of Things provides you with an easier way to understand the purpose and application of learning algorithms on IoT.

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