Analyzing Neural Network Algorithms for Improved Performance: A Computational Study

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Abstract

Machine learning is an area of artificial intelligence that deals with the development of algorithms and models for automatically detecting patterns and making inferences from data. Neural networks are one of the most popular machine learning models that simulate the learning process of the brain and are widely used in various fields such as pattern recognition, prediction and control. Matlab is a popular programming language in the field of machine learning due to its ease of use and numerous libraries that contain the implementation of various machine learning algorithms. In this paper, we will present the simulation of machine learning in neural networks using different algorithms in Matlab. We will describe several algorithms such as feedforward neural network, convolutional neural network and deep neural network. Also, we will show how these algorithms are applied in practice using different datasets. Finally, we will compare the performance of different algorithms and analyze their advantages and disadvantages.
分析神经网络算法以提高性能:计算研究
机器学习是人工智能的一个领域,它涉及开发用于自动检测模式和从数据中进行推断的算法和模型。神经网络是最流行的机器学习模型之一,它模拟大脑的学习过程,被广泛应用于模式识别、预测和控制等多个领域。Matlab 因其易用性和众多包含各种机器学习算法实现的库而成为机器学习领域流行的编程语言。本文将介绍在 Matlab 中使用不同算法模拟神经网络中的机器学习。我们将介绍前馈神经网络、卷积神经网络和深度神经网络等几种算法。此外,我们还将展示如何使用不同的数据集将这些算法应用于实践。最后,我们将比较不同算法的性能并分析其优缺点。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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