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Review: Big Data Techniques of Google, Amazon, Facebook and Twitter

机译:评论:谷歌,亚马逊,Facebook和Twitter的大数据技术

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摘要

Google, Amazon, Facebook and Twitter gained enormous advantages from big data methodologies and techniques. There are certain unanswered questions regarding the process of big data, however, not much research has been undertaken in this area yet. This review will perform a comparative analysis based on big data techniques obtained from sixteen peer-reviewed scientific publications (2007-2015) about social media companies such as Google, Amazon, Facebook and Twitter to undertake a comparative analysis. Google has invented many techniques by using big data methods to strategize against competitors. Google, Facebook, Amazon and Twitter are partially similar companies that use big data despite their own business model requirements. As an illustration, Google required the data "ware housing" approach to store trillion of data related to Facebook, since Facebook owns more than one billion users and Twitter owns 300 million active users correspondingly equally to Amazon. Since all these organization required data ware house approach, Google has preferred the variation of data ware house storages (Spanner, Photon, Fusion table) variation of data transaction methods. By using these data ware house storage approaches (F1 for execute queries via SQL) and communication of different approached such as, Yedalog. Facebook and Twitter are both the only social media companies that have different requirements. The requirement of big data is high and these entire requirements partially depend on each another as it is completely isolated. This study is a useful reference for many researchers to identify the differences of big data approaches and technological analysis in comparison to Google, Facebook, Twitter and Amazon big data techniques and outline their, variations and similarities analysis.
机译:Google,Amazon,Facebook和Twitter从大数据方法和技术中获得了巨大的优势。关于大数据的处理,还有一些未解决的问题,但是,在这一领域还没有进行太多的研究。此次审查将基于大数据技术进行比较分析,该技术是从16家经过同行评审的科学出版物(2007-2015年)中获得的,这些科学出版物涉及社交媒体公司(例如Google,Amazon,Facebook和Twitter)进行比较分析。 Google通过使用大数据方法制定战略以对抗竞争对手,从而发明了许多技术。 Google,Facebook,Amazon和Twitter是部分相似的公司,尽管他们有自己的业务模型要求,但它们仍使用大数据。举例说明,由于Facebook拥有超过10亿用户,Twitter拥有与亚马逊相当的3亿活跃用户,因此Google要求采用数据“存储”方法来存储与Facebook相关的数万亿数据。由于所有这些组织都需要数据仓库方法,因此Google倾向于使用数据仓库方法(Spanner,Photon,Fusion表)的变体来更改数据交易方法。通过使用这些数据仓库存储方法(用于通过SQL执行查询的F1)和不同方法(例如Yedalog)的通信。 Facebook和Twitter都是仅有的具有不同要求的社交媒体公司。大数据的需求很高,而由于它们完全是隔离的,所以这些整体需求部分相互依赖。这项研究为许多研究人员识别大数据方法和技术分析与Google,Facebook,Twitter和亚马逊大数据技术的差异提供了有用的参考,并概述了它们的差异和相似性分析。

著录项

  • 来源
    《Journal of Communications》 |2018年第2期|94-100|共7页
  • 作者单位

    School of Computing and Mathematics, Charles Sturt University, Melbourne, Victoria 3000, Australia Department of Electrical and Electronic Engineering, The University of Melbourne, Parkville, VIC 3010;

    School of Computing and Mathematics, Charles Sturt University, Melbourne, Victoria 3000, Australia Department of Electrical and Electronic Engineering, The University of Melbourne, Parkville, VIC 3010;

    School of Computing and Mathematics, Charles Sturt University, Melbourne, Victoria 3000, Australia Department of Electrical and Electronic Engineering, The University of Melbourne, Parkville, VIC 3010;

    School of Computing and Mathematics, Charles Sturt University, Melbourne, Victoria 3000, Australia Department of Electrical and Electronic Engineering, The University of Melbourne, Parkville, VIC 3010;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Big data; big data techniques; amazon; social networks;

    机译:大数据;大数据技术;亚马逊社交网络;
  • 入库时间 2022-08-18 03:56:24

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