Tests for detection of outliers based on robust estimators of nuisance parameters
Teoriâ veroâtnostej i ee primeneniâ, Tome 40 (1995) no. 2, pp. 445-452
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The problem of detection of anomalous observations (outliers) in multivariate data sets in the presence of nuisance parameters is considered and an asymptotical approach is used [1]. A counting process is constructed on the tails of the normalized empirical distribution and conditions are formulated for weak convergence to a Poisson process. Crossing some level by counting process trajectories indicates the presence of anomalous observations and crossing points determine observations subjected to gross errors. For elliptic families of multivariate distributions, robust estimators of unknown parameters with a high breakdown point (the smallest portion of outliers with inadmissible large estimator values) and a bounded influence function, defining estimator sensitivity to gross errors, in Hampel's terminology [5], [6], are considered. The estimators, which have these properties, retain high efficiency in the presence of outliers and reduce the “masking effect” when outliers are masked and look like “proper” observations, whereas the nearest “proper” observations are deleted. An example is given.
Keywords:
elliptic family, outliers, robust estimators.
@article{TVP_1995_40_2_a17,
author = {V. I. Pagurova and I. L. Chizhikova},
title = {Tests for detection of outliers based on robust estimators of nuisance parameters},
journal = {Teori\^a vero\^atnostej i ee primeneni\^a},
pages = {445--452},
year = {1995},
volume = {40},
number = {2},
language = {ru},
url = {http://geodesic.mathdoc.fr/item/TVP_1995_40_2_a17/}
}
TY - JOUR AU - V. I. Pagurova AU - I. L. Chizhikova TI - Tests for detection of outliers based on robust estimators of nuisance parameters JO - Teoriâ veroâtnostej i ee primeneniâ PY - 1995 SP - 445 EP - 452 VL - 40 IS - 2 UR - http://geodesic.mathdoc.fr/item/TVP_1995_40_2_a17/ LA - ru ID - TVP_1995_40_2_a17 ER -
V. I. Pagurova; I. L. Chizhikova. Tests for detection of outliers based on robust estimators of nuisance parameters. Teoriâ veroâtnostej i ee primeneniâ, Tome 40 (1995) no. 2, pp. 445-452. http://geodesic.mathdoc.fr/item/TVP_1995_40_2_a17/