Clustering, Cluster Inference and Applications in Clustering: Applications to the Analysis of Gene Expression Data - Surajit Ray - Grāmatas - LAP LAMBERT Academic Publishing - 9783845423623 - 2011. gada 1. septembris
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Clustering, Cluster Inference and Applications in Clustering: Applications to the Analysis of Gene Expression Data

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Multivariate mixture models provide a convenient method of density estimation and model based clustering as well as providing possible explanations for the actual data generation process. But the problem of choosing the number of components in a statistically meaningful way is still a subject of considerable research. Available methods for estimation include, optimizing AIC and BIC, estimating the number through nonparametric maximum likelihood, hypothesis testing and Bayesian approaches with entropy distances. In our book we present several rules for selecting a finite mixture model, based on estimation and inference using a quadratic distance measure. In this book we also develop tools for determining the number of modes in a mixture of multivariate normal densities. We use these criterion to select clusters which display distinct modes. Finally we fine tune our methods to analyze gene-expression data from micro-arrays, and compare them with other competitive methods.

Mediji Grāmatas     Paperback Book   (Grāmata ar mīksto vāku un līmēto muguru)
Izlaists 2011. gada 1. septembris
ISBN13 9783845423623
Izdevēji LAP LAMBERT Academic Publishing
Lapas 184
Izmēri 150 × 11 × 226 mm   ·   292 g
Valoda Vācu  

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