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Deciphering Big Data Research Themes

机译:解读大数据研究主题

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摘要

Big Data is a relatively novel research field that has attracted high interest from the industry and academia for its wide applicability. Numerous definitions of Big Data have been given by scholars from different perspectives. We think the Big Data research field could be better appreciated by analyzing the relevant scientific articles published over the years. However, the sheer volume of the Big Data related literature needs a more efficient way to analyze them. As such, we utilize the knowledge domain analysis techniques developed by information scientists to build the intellectual structure and uncover the main research themes, which afford us a holistic view of the overall Big Data research field. Based on our analysis, the research themes of Big Data may be classified into four main categories: the first one deals with the technologies and architectures aspect of Big Data; the second one relates to the prospective applications of the Big Data analytics; the third one covers levels of parallelism in the Big Data processing stacks; the rest encompasses mostly machine learning related studies and some miscellaneous topics that may benefit from the Big Data processing capabilities.
机译:大数据是一个相对较新的研究领域,因其广泛的应用性而引起了业界和学术界的高度关注。学者们从不同的角度给出了大数据的许多定义。我们认为,通过分析多年来发表的相关科学文章,可以更好地理解大数据研究领域。但是,与大数据相关的文献数量之庞大,需要一种更有效的方法来进行分析。因此,我们利用信息科学家开发的知识领域分析技术来构建知识结构并揭示主要的研究主题,从而为我们提供了整个大数据研究领域的整体视图。根据我们的分析,大数据的研究主题可以分为四个主要类别:第一类涉及大数据的技术和体系结构方面;第二类涉及大数据的技术和体系结构方面。第二个涉及大数据分析的预期应用;第三部分介绍了大数据处理堆栈中的并行性级别;其余大部分包括与机器学习相关的研究,以及一些可能受益于大数据处理能力的其他主题。

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