Evaluation of an Evolutionary Algorithm to Dynamically Alter Partition Sizes in Web Caching Systems

R. Hurley, Graeme Young
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Abstract

There has been an explosion in the volume of data that is being accessed from the Internet. As a result, the risk of a Web server being inundated with requests is ever-present. One approach to reducing the performance degradation that potentially comes from Web server overloading is to employ Web caching where data content is replicated in multiple locations. In this paper, we investigate the use of evolutionary algorithms to dynamically alter partition size in Web caches. We use established modeling techniques to compare the performance of our evolutionary algorithm to that found in statically-partitioned systems. Our results indicate that utilizing an evolutionary algorithm to dynamically alter partition sizes can lead to performance improvements especially in environments where the relative size of large to small pages is high.
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Web缓存系统中动态改变分区大小的进化算法的评价
从互联网上获取的数据量呈爆炸式增长。因此,Web服务器被请求淹没的风险始终存在。减少可能由Web服务器过载引起的性能下降的一种方法是使用Web缓存,其中在多个位置复制数据内容。在本文中,我们研究了使用进化算法来动态改变Web缓存中的分区大小。我们使用已建立的建模技术将进化算法的性能与静态分区系统中的性能进行比较。我们的结果表明,利用进化算法动态改变分区大小可以提高性能,特别是在大小页面相对较大的环境中。
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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