Title of article :
Robust tools for the imperfect world
Author/Authors :
Peter Filzmoser، نويسنده , , Valentin Todorov، نويسنده ,
Issue Information :
روزنامه با شماره پیاپی سال 2013
Pages :
17
From page :
4
To page :
20
Abstract :
Data outliers or other data inhomogeneities lead to a violation of the assumptions of traditional statistical estimators and methods. Robust statistics offers tools that can reliably work with contaminated data. Here, outlier detection methods in low and high dimension, as well as important robust estimators and methods for multivariate data are reviewed, and the most important references to the corresponding literature are provided. Algorithms are discussed, and routines in R are provided, allowing for a straightforward application of the robust methods to real data.
Keywords :
Robustness , outlier , MCD , PCA , High breakdown , Statistical design pattern
Journal title :
Information Sciences
Serial Year :
2013
Journal title :
Information Sciences
Record number :
1215745
Link To Document :
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