利用NoSQL数据库增强Hadoop和MapReduce对科学数据的性能

Hamoud H. Alshammari, H. Bajwa, JeongKyu Lee
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引用次数: 7

摘要

科学数据集通常具有相似的工作,这些工作经常由不同的用户应用于它们。此外,许多这些数据集是非结构化和复杂的,需要快速和简单的处理。为了提高现有Hadoop和MapReduce算法的性能,有必要根据数据集的类型和作业的要求开发一种算法。基因组和生物学数据是非结构化数据的一个例子,因为它只有一个巨大的不可读和非关系字母序列。在本文中,我们概述了一种开发的MapReduce算法及其使用HBase作为NoSQL数据库的仿真。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Enhancing performance of Hadoop and MapReduce for scientific data using NoSQL database
Scientific data sets usually have similar jobs that are frequently applied to them by different users. In addition, many of these data sets are unstructured and complex, and required fast and simple processing. In order to increase the performance of the existing Hadoop and MapReduce algorithm, it is necessary to develop an algorithm based on the type of data sets and requirements of the jobs. Genomic and biological data is an example of unstructured data because it only has a huge sequence of unreadable and non-relational letters. In this paper, we present an overview of a developed MapReduce algorithm and its simulation using HBase as a NoSQL database.
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