Analysis and Neural Networks Modeling of Web Server Performances Using MySQL and PostgreSQL

Fontaine Rafamantanantsoa, Maherindefo Laha
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引用次数: 2

Abstract

The purpose of this study is to analyze and then model, using neural network models, the performance of the Web server in order to improve them. In our experiments, the parameters taken into account are the number of instances of clients simultaneously requesting the same Web page that contains the same SQL queries, the number of tables queried by the SQL, the number of records to be displayed on the requested Web pages, and the type of used database server. This work demonstrates the influences of these parameters on the results of Web server performance analyzes. For the MySQL database server, it has been observed that the mean response time of the Web server tends to become increasingly slow as the number of client connection occurrences as well as the number of records to display increases. For the PostgreSQL database server, the mean response time of the Web server does not change much, although there is an increase in the number of clients and/or size of information to be displayed on Web pages. Although it has been observed that the mean response time of the Web server is generally a little faster for the MySQL database server, it has been noted that this mean response time of the Web server is more stable for PostgreSQL database server.
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基于MySQL和PostgreSQL的Web服务器性能分析与神经网络建模
本研究的目的是利用神经网络模型对Web服务器的性能进行分析和建模,以提高Web服务器的性能。在我们的实验中,要考虑的参数是同时请求包含相同SQL查询的相同Web页面的客户机实例的数量、SQL查询的表的数量、要在请求的Web页面上显示的记录的数量以及所使用的数据库服务器的类型。本工作演示了这些参数对Web服务器性能分析结果的影响。对于MySQL数据库服务器,可以观察到Web服务器的平均响应时间随着客户端连接次数的增加以及要显示的记录数量的增加而变得越来越慢。对于PostgreSQL数据库服务器,Web服务器的平均响应时间变化不大,尽管客户端数量和/或要在Web页面上显示的信息大小有所增加。虽然已经观察到Web服务器的平均响应时间通常比MySQL数据库服务器快一点,但值得注意的是,Web服务器的平均响应时间对于PostgreSQL数据库服务器来说更稳定。
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