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Given the huge amount of information in the internet and in practically every domain of knowledge that we are facing today, knowledge discovery calls for automation. The book deals with methods from classification and data analysis that respond effectively to this rapidly growing challenge. The interested reader will find new methodological insights as well as applications in economics, management science, finance, and marketing, and in pattern recognition, biology, health, and archaeology.
Clustering remains a vibrant area of research in statistics.
Although there are many books on this topic, there are relatively
few that are well founded in the theoretical aspects. In Robust
Cluster Analysis and Variable Selection, Gunter Ritter presents an
overview of the theory and applications of probabilistic clustering
and variable selection, synthesizing the key research results of
the last 50 years. The author focuses on the robust clustering
methods he found to be the most useful on simulated data and
real-time applications. The book provides clear guidance for the
varying needs of both applications, describing scenarios in which
accuracy and speed are the primary goals. Robust Cluster Analysis
and Variable Selection includes all of the important theoretical
details, and covers the key probabilistic models, robustness
issues, optimization algorithms, validation techniques, and
variable selection methods. The book illustrates the different
methods with simulated data and applies them to real-world data
sets that can be easily downloaded from the web. This provides you
with guidance in how to use clustering methods as well as
applicable procedures and algorithms without having to understand
their probabilistic fundamentals.
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