Robust Statistics: Theory and Methods
Автор:
Ricardo Maronna, Doug Martin and Victor J. Yohai, 438 стр., серия:
"Wiley Series in Probability and Statistics",
издатель:
"John Wiley and Sons, Ltd", ISBN:
978-0-470-01092-1
Classical statistical techniques fail to cope well with deviations from a standard distribution. Robust statistical methods take into account these deviations while estimating the parameters of parametric models, thus increasing the accuracy of the inference. Research into robust methods is flourishing, with new methods being developed and different applications considered. Robust Statistics sets out to explain the use of robust methods and their theoretical justification. It provides an up–to–date overview of the theory and practical application of the robust statistical methods in regression, multivariate analysis, generalized linear models and time series. This unique book: Enables the reader to select and use the most appropriate robust method for their particular statistical model. Features computational algorithms for the core methods. Covers regression methods for data mining applications. Includes examples with real data and applications using the...
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