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Performance Evaluation of Traditional Caching Policies on a Large System with Petabytes of Data

机译:PB级数据的大型系统上传统缓存策略的性能评估

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Caching is widely known to be an effective method for improving I/O performance by storing frequently used data on higher speed storage components. However, most existing studies that focus on caching performance evaluate fairly small files populating a relatively small cache. Few reports are available that detail the performance of traditional cache replacement policies on extremely large caches. Do such traditional caching policies still work effectively when applied to systems with petabytes of data? In this paper, we comprehensively evaluate the performance of several cache policies, which include First-In-First-Out (FIFO), Least Recently Used (LRU) and Least Frequently Used (LFU), on the global satellite imagery distribution application maintained by the U.S. Geological Survey (USGS) Earth Resources Observation and Science Center (EROS). Evidence is presented suggesting traditional caching policies are capable of providing performance gains when applied to large data sets as with smaller data sets. Our evaluation is based on approximately three million real-world satellite images download requests representing global user download behavior since October 2008.
机译:通过将频繁使用的数据存储在高速存储组件上,缓存是一种提高I / O性能的有效方法。但是,大多数现有研究都集中在缓存性能上,他们评估的是填充相对较小的缓存的较小文件。很少有报告详细说明传统超高速缓存替换策略在超大高速缓存上的性能。当将这种传统的缓存策略应用于具有PB级数据的系统时,仍然有效吗?在本文中,我们对由维护的全球卫星图像分发应用程序中的几种缓存策略(包括先进先出(FIFO),最近最少使用(LRU)和最少经常使用(LFU))的性能进行了综合评估。美国地质调查局(USGS)地球资源观测和科学中心(EROS)。证据表明,传统的缓存策略在应用于大型数据集时(与较小的数据集一样)能够提供性能提升。我们的评估基于自2008年10月以来代表全球用户下载行为的大约三百万个现实世界卫星图像下载请求。

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