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HadoopWatch: A first step towards comprehensive traffic forecasting in cloud computing

INFOCOM(2014)

引用 70|浏览69
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摘要
This paper presents our effort towards comprehensive traffic forecasting for big data applications using external, light-weighted file system monitoring. Our idea is motivated by the key observations that rich traffic demand information already exists in the log and meta-data files of many big data applications, and that such information can be readily extracted through run-time file system monitoring. As the first step, we use Hadoop as a concrete example to explore our methodology and develop a system called HadoopWatch to predict traffic demand of Hadoop applications. We further implement HadoopWatch in our real small-scale testbed with 10 physical servers and 30 virtual machines. Our experiments over a series of MapReduce applications demonstrate that HadoopWatch can forecast the traffic demand with almost 100% accuracy and time advance. Furthermore, it makes no modification of the Hadoop framework, and introduces little overhead to the application performance.
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关键词
public domain software,parallel programming,external-light-weighted file system monitoring,virtual machines,mapreduce applications,physical servers,real-small-scale testbed,log files,hadoopwatch,comprehensive traffic demand forecasting,information extraction,traffic demand prediction,meta-data files,big data applications,telecommunication traffic,big data,meta data,cloud computing
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