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Summarizing data using partially ordered set theory: An application to fiscal frameworks in 97 countries

机译:使用部分有序集理论汇总数据:在97个国家/地区的财政框架中的应用

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The widespread use of composite indices has often been motivated by their practicality to quantify qualitative data in an easy and intuitive way. At the same time, this approach has been challenged due to the subjective and partly ad hoc nature of computation, aggregation and weighting techniques as well as the handling of missing data. Partially ordered set (POSET) theory offers an alternative approach for summarizing qualitative data in terms of quantitative indices, which relies on a computation scheme that fully exploits the available information and does not require the subjective assignment of weights. The present paper makes the case for an increased use of POSET theory in the social sciences and provides a comparison of POSET indices and composite indices (from previous studies) measuring the "stringency" of fiscal frameworks using data from the OECD Budget Practices and Procedures survey (2007/08).
机译:合成指数的广泛使用通常是由于其实用性的动机,即以简单直观的方式量化定性数据。同时,由于计算,聚合和加权技术的主观和部分即席性质以及对丢失数据的处理,这种方法受到了挑战。部分排序集(POSET)理论提供了一种定量指标方面的定性数据汇总的替代方法,该方法依赖于充分利用可用信息且不需要主观权重分配的计算方案。本文提出了在社会科学中增加使用POSET理论的理由,并提供了对POSET指数和综合指数的比较(来自以前的研究),这些指数使用来自OECD预算实践和程序调查的数据来衡量财政框架的“严格性”。 (2007/08)。

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