CLUMPP: a cluster matching and permutation program for dealing with label switching and multimodality in analysis of population structure
CLUMPP: программа для согласования кластеров и перестановок при решении проблем переключения меток и мультимодальности в анализе структур популяций
2007-05-07
SCID: 54.1/2d472j9n
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CLUMPPcluster matching and permutationgenuine multimodalitylabel switchingpopulation-genetic clustering
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Abstract (AI)
MOTIVATION: Clustering of individuals into populations on the basis of multilocus genotypes is informative in a variety of settings. In population-genetic clustering algorithms, such as BAPS, STRUCTURE and TESS, individual multilocus genotypes are partitioned over a set of clusters, often using unsupervised approaches that involve stochastic simulation. As a result, replicate cluster analyses of the same data may produce several distinct solutions for estimated cluster membership coefficients, even though the same initial conditions were used. Major differences among clustering solutions have two main sources: (1) 'label switching' of clusters across replicates, caused by the arbitrary way in which clusters in an unsupervised analysis are labeled, and (2) 'genuine multimodality,' truly distinct solutions across replicates. RESULTS: To facilitate the interpretation of population-genetic clustering results, we describe three algorithms for aligning multiple replicate analyses of the same data set. We have implemented these algorithms in the computer program CLUMPP (CLUster Matching and Permutation Program). We illustrate the use of CLUMPP by aligning the cluster membership coefficients from 100 replicate cluster analyses of 600 chickens from 20 different breeds. AVAILABILITY: CLUMPP is freely available at http://rosenberglab.bioinformatics.med.umich.edu/clumpp.html.
Key Findings
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CLUMPP is demonstrated by aligning cluster membership coefficients from 100 replicate analyses of 600 chickens from 20 breeds.
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CLUMPP is freely available from the authors' website for use in population-genetic clustering studies.
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Genuine multimodality represents truly distinct clustering solutions produced across replicates of the same data.
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Label switching arises from arbitrary cluster labeling across unsupervised, stochastic clustering replicates.
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Replicate population-genetic clustering analyses can produce distinct solutions due to label switching and genuine multimodality.
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The algorithms are implemented in the program CLUMPP (CLUster Matching and Permutation Program) to facilitate interpretation of clustering results.
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The authors describe three algorithms to align multiple replicate clustering analyses to address label switching and multimodality.
Research Object
CLUMPP software for aligning multiple replicate population-genetic clustering analyses
Research Subject
Algorithms and procedures for matching clusters and permuting labels to resolve label switching and genuine multimodality in multilocus-genotype-based population structure analyses (alignment of cluster membership coefficients across replicates)
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2007-05-07
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