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Redips: Backlink Search and Analysis on the Web for Business Intelligence Analysis

机译:重做:在Web上进行反向链接搜索和分析,以进行商业智能分析

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摘要

The World Wide Web presents significant opportunities for business intelligence analysis as it can provide information about a company's external environment and its stakeholders. Traditional business intelligence analysis on the Web has focused on simple keyword searching. Recently, it has been suggested that the incoming links, or backlinks, of a company's Web site (i.e., other Web pages that have a hyperlink pointing to the company of interest) can provide important insights about the company's "online communities." Although analysis of these communities can provide useful signals for a company and information about its stakeholder groups, the manual analysis process can be very time-consuming for business analysts and consultants. In this article, we present a tool called Redips that automatically integrates backlink meta-searching and text-mining techniques to facilitate users in performing such business intelligence analysis on the Web. The architectural design and implementation of the tool are presented in the article. To evaluate the effectiveness, efficiency, and user satisfaction of Redips, an experiment was conducted to compare the tool with two popular business intelligence analysis methods-using backlink search engines and manual browsing. The experiment results showed that Redips was statistically more effective than both benchmark methods (in terms of Recall and F-measure) but required more time in search tasks. In terms of user satisfaction, Redips scored statistically higher than backlink search engines in all five measures used, and also statistically higher than manual browsing in three measures.
机译:万维网为商业智能分析提供了巨大的机会,因为它可以提供有关公司外部环境及其利益相关者的信息。 Web上的传统商业智能分析一直侧重于简单的关键字搜索。最近,有人建议,公司网站的传入链接或反向链接(即具有指向目标公司的超链接的其他网页)可以提供有关公司“在线社区”的重要见解。尽管对这些社区的分析可以为公司提供有用的信号以及有关其利益相关者群体的信息,但是对于业务分析师和顾问而言,手动分析过程可能非常耗时。在本文中,我们提供了一个称为Redips的工具,该工具自动集成了反向链接元搜索和文本挖掘技术,以方便用户在Web上执行此类商业智能分析。本文介绍了该工具的体系结构设计和实现。为了评估Redips的有效性,效率和用户满意度,进行了一项实验,将该工具与两种流行的商业智能分析方法进行了比较-使用反向链接搜索引擎和手动浏览。实验结果表明Redips在统计上比两种基准方法(在Recall和F-measure方面)更有效,但在搜索任务中需要更多时间。在用户满意度方面,Redips在所有使用的五项指标中的得分在统计上均高于反向链接搜索引擎,在统计上也高于三项指标的手动浏览。

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