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Linguistic Summaries Generation with Hybridization Method Based on Rough and Fuzzy Sets

机译:基于粗糙集和模糊集的混合语言生成语言摘要

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In this paper authors propose a new algorithm for linguistic data summarization based on hybridization of rough sets and fuzzy sets techniques. The new algorithm applies rough sets theory for feature selection in early stages of linguistic summaries' generation. The rough sets theory was used to reduce on significant way, the amount on summaries obtained by others algorithms. The algorithm combines lower approximation, k grade dependency and fuzzy sets to get linguistic summaries. The results of proposed algorithm are compared with association rules approach. In order to validate the algorithm proposed, authors apply both qualitative and quantitative methods. Authors used two databases in order to validate the algorithm; theses databases belong to "Repository of Project Management Research". The first database is associated to personality traits and human performance in software projects. The second database is associated to analysis of revenue assurance in different organization. Considering quantitative approach, the algorithm proposed, obtains better results than the algorithm based on association rules; while regards execution time, the best algorithm was the algorithm based on association rules, because rough sets theory was high time-consuming technique.
机译:本文作者提出了一种基于粗糙集和模糊集技术混合的语言数据汇总新算法。新算法将粗糙集理论应用于语言摘要生成的早期阶段的特征选择。粗糙集理论被用来在很大程度上减少其他算法获得的摘要数量。该算法结合了较低的逼近度,k级依赖性和模糊集来获得语言摘要。将该算法的结果与关联规则方法进行了比较。为了验证所提出的算法,作者同时应用了定性和定量方法。作者使用两个数据库来验证算法。这些数据库属于“项目管理研究资料库”。第一个数据库与软件项目中的人格特质和人类绩效相关。第二个数据库与不同组织中的收入保证分析相关联。考虑到定量方法,提出的算法比基于关联规则的算法获得更好的效果。在执行时间方面,最好的算法是基于关联规则的算法,因为粗糙集理论是一项耗时的技术。

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