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Shallow and Deep Learning Principles

版本说明:1

作     者:Zekâi Şen 

I S B N:(纸本) 9783031295546;9783031295577 

出 版 社:Springer Cham 

出 版 年:1000年

页      数:XX, 661页

主 题 词:Communications Engineering, Networks Probability and Statistics in Computer Science Business and Management, general Artificial Intelligence 

摘      要:This book discusses Artificial Neural Networks (ANN) and their ability to predict outcomes using deep and shallow learning principles. The author first describes ANN implementation, consisting of at least three layers that must be established together with cells, one of which is input, the other is output, and the third is a hidden (intermediate) layer. For this, the author states, it is necessary to develop an architecture that will not model mathematical rules but only the action and response variables that control the event and the reactions that may occur within it. The book explains the reasons and necessity of each ANN model, considering the similarity to the previous methods and the philosophical - logical rules.

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