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V-measure×福尔克斯-马洛斯指数×
领域模型评估模型评估
方法族MCDMMCDM
起源年份20071983
提出者Andrew Rosenberg, Julia HirschbergE. B. Fowlkes, C. L. Mallows
类型Entropy-based metricPair-counting metric
开创性文献Rosenberg, A., & Hirschberg, J. (2007). V-measure: A conditional entropy-based external cluster evaluation measure. In Proceedings of the 2007 Joint Conference on Empirical Methods in Natural Language Processing and Computational Natural Language Learning (pp. 410-420). link ↗Fowlkes, E. B., & Mallows, C. L. (1983). A method for comparing two hierarchical clusterings. Journal of the American Statistical Association, 78(383), 553-569. DOI ↗
别名V-measure score, homogeneity completeness V-measureFowlkes Mallows, FM index
相关55
摘要V-measure, introduced by Rosenberg and Hirschberg in 2007, is an external clustering evaluation metric based on the harmonic mean of homogeneity and completeness. It measures whether clusters contain only points from a single true class (homogeneity) and whether all points from a true class are assigned to the same cluster (completeness). Values range from 0 to 1.The Fowlkes-Mallows Index, introduced by Fowlkes and Mallows in 1983, is an external clustering evaluation metric based on the geometric mean of precision and recall. It measures agreement between two partitions by examining pairs of points and how they are grouped in both the predicted and ground truth clusterings. Values range from 0 to 1, with 1 indicating perfect agreement.
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ScholarGate方法对比: V-measure · Fowlkes-Mallows Index. 于 2026-06-19 检索自 https://scholargate.app/zh/compare