探讨设计基于正态分布的不相似度量来发现时间分布关联模式的可能性

V. Radhakrishna, Shadi A. Aljawarneh, V. Janaki, P.V. Kumar
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引用次数: 52

摘要

本研究采用标准分数和正态分布的概念,设计了一种新的不相似度度量,用于从时间戳时间数据库中挖掘相似模式。设计不相似性度量的基本思想是使用并转换支持到z空间,并计算时间模式的z分数的概率。概率用正态分布图求得。目标是设计一个基于正态分布的不相似性度量,该度量可用于发现所有有效的相似特征的时间关联模式。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Looking into the possibility for designing normal distribution based dissimilarity measure to discover time profiled association patterns
This research addresses the design of a novel dissimilarity measure for mining similar patterns from time stamped temporal databases applying the concept of standard score and normal distribution. The basic idea behind the design of dissimilarity measure is to use and transform supports to z-space and compute the probability of z-score of temporal patterns. The probability is obtained using normal distribution chart. The objective has been to design a normal distribution based dissimilarity measure which can be used to discover all valid similarity-profiled temporal association patterns.
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