家庭Wifi网络选择:基于决策树C4.5算法的机器学习实现

D. Khairani, Muhammad Ammaridho Romdhan Siregar, S. Masruroh, Miftakhul Nuuril Azizah
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引用次数: 0

摘要

互联网服务提供商提供的多种带宽使人们难以选择,特别是对不熟悉互联网的普通人;因此,大多数人选择是因为价格合理。许多用户也抱怨互联网使用的困难和缓慢。问题集中在互联网服务提供商身上,他们被认为在提供服务方面做得很差。带宽消耗的数量与用户的需求不相符,这是导致网速慢的一个因素。因此,必须根据每个用户的需求选择合适的带宽。根据目前的文献,与其他算法相比,C4.5决策树方法可以提供最佳和正确的决策。因此,本项目将开发一个基于C4.5决策树算法的web应用程序,可以帮助确定带宽和互联网跟踪社区的需求。使用C4.5决策树,决策基于先前收集的数据中确定的模式。根据这些模式,可以预测社区中各种形式的互联网使用情况。根据计算,得到的精度为0.54,即54%的百分比。黑盒测试表明带宽确定应用程序运行正常
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Selection of Home Wifi Internet: Machine Learning Implementation With Decision Tree C4.5 Algorithm Method
The multiple bandwidths that internet service providers offer make it difficult for people to choose, especially for regular people unfamiliar with the internet; therefore, most people choose because the price is reasonable. Numerous users also lament the difficulty and slow internet usage. The issue is then concentrated on internet service providers, who are thought to be poor at offering services. The quantity of bandwidth consumed, which does not correspond to the user’s needs, is one factor contributing to slow internet. As a result, the appropriate bandwidth must be chosen based on the requirements of each user. Compared to other algorithms, the C4.5 decision tree method can deliver the best and correct decision, according to the current literature. As a result, this project will develop a web application based on the C4.5 decision tree algorithm that can assist in determining bandwidth and internet following community needs. Using this C4.5 Decision Tree, decisions are based on patterns identified in previously collected data. Predictions about various forms of internet use in the neighborhood may subsequently be produced from these patterns. Based on the calculation, the accuracy obtained is 0.54, or a percentage of 54%. The black box testing indicated that the bandwidth determination application was functioning correctly
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