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Designing Maximally, or Otherwise, Diverse Teams: Group-Diversity Indexes for Testing Computational Models of Cultural and Other Social-Group Dynamics

机译:最大限度地设计或以其他方式,不同的团队:用于测试文化和其他社会群体动态的计算模型的集团 - 多样性指标

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Given a set of known numbers, there are many measures of the degree of inhomogeneity within the set such as the standard deviation, the relative mean difference, and the Gini coefficient. This paper discusses conceptual issues (such as qualitative versus quantitative diversity, and the group as a population versus as a sample), desired properties (such as symmetry and invariance properties), and technical considerations (such as working with differences versus deviations, or absolute versus squared values) in choosing an index suitable for describing the degree of inhomogeneity or diversity in a group of people or computer agents. In particular, it is argued that the relative mean difference and the Gini coefficient are not well-suited as indexes of cultural diversity. This paper then addresses two apparently neglected inverse problems: Given a pre-specified degree of inhomogeneity, what set of unknown numbers has the desired degree of inhomogeneity? And, in particular, what set has the maximal possible degree of inhomogeneity? The solution requires that the set of permissible numbers be bounded with minimum and maximum values. A key benefit of such inverse procedures is that agent-based groups with pre-selected degrees of cultural diversity can be formed to test hypotheses using the full range of possible diversities and thereby avoid statistical problems due to restriction of range effects.
机译:给定一组已知数字,在诸如标准偏差的设定内的不均匀性程度有许多测量,相对平均差异和基尼系数。本文讨论了概念问题(如定性与定量分集,而本集团为人口与样本),所需的属性(例如对称性和不变性属性)和技术考虑(例如使用差异与偏差,或绝对与平方值)在选择适合于描述一组人或计算机代理商中的不均匀性或多样性的指数。特别是,认为相对平均差异和基尼系数并不完全适合文化多样性的指标。本文然后解决了两个明显被忽视的逆问题:给定预先指定的不均匀程度,哪些未知数具有所需的不均匀程度?特别是,集体具有最大可能的不均匀程度?该解决方案要求该组允许的数字与最小值和最大值限制。这种逆过程的一个关键益处是,可以形成具有预先选择的文化多样性度的基于代理的组,以测试假设使用全范围可能的多样性,从而避免由于范围效应的限制而避免统计问题。

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