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A New Insight into the Linguistic Summarization of Time Series Via a Degree of Support: Elimination of Infrequent Patterns

机译:通过支持度对时间序列的语言总结的新见解:消除不常见的模式

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We extend our previous works on using a fuzzy logic based calculus of linguistically quantified propositions for linguistic summarization of time series (cf. Kacprzyk, Wilbik and Zadrozny [4,5,6,7, 8,9,10, 11, 12, 13]. That approach, using the classic degree of truth (validity) to be maximized, is here extended by adding a degree of support. On the one hand, this can reflect in natural language the essence of traditional statistical approaches, and on the other hand, can help discard linguistic summaries with a high degree of truth but a low degree of support so that they concern infrequently occurring patterns and may be uninteresting. We show an application to the absolute performance analysis of an investment (mutual) fund.
机译:我们扩展了先前的工作,即使用基于模糊逻辑的语言量化命题演算对时间序列进行语言汇总(参见Kacprzyk,Wilbik和Zadrozny [4,5,6,7,8,9,10,11,12,13 ]。该方法利用最大程度的经典真实性(有效性),在此通过添加一定程度的支持加以扩展:一方面,这可以在自然语言中反映传统统计方法的本质,另一方面一方面,它可以帮助您舍弃具有高度真实性但缺乏支持的语言摘要,从而使它们不会经常出现,并且可能没有兴趣,因此我们将其应用于投资(共同)基金的绝对绩效分析。

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