JOURNAL ARTICLE

Nonparametric regression and classification with functional, categorical, and mixed covariates

Leonie SelkJan Gertheiss

Year: 2022 Journal:   Advances in Data Analysis and Classification Vol: 17 (2)Pages: 519-543   Publisher: Springer Science+Business Media

Abstract

Abstract We consider nonparametric prediction with multiple covariates, in particular categorical or functional predictors, or a mixture of both. The method proposed bases on an extension of the Nadaraya-Watson estimator where a kernel function is applied on a linear combination of distance measures each calculated on single covariates, with weights being estimated from the training data. The dependent variable can be categorical (binary or multi-class) or continuous, thus we consider both classification and regression problems. The methodology presented is illustrated and evaluated on artificial and real world data. Particularly it is observed that prediction accuracy can be increased, and irrelevant, noise variables can be identified/removed by ‘downgrading’ the corresponding distance measures in a completely data-driven way.

Keywords:
Categorical variable Covariate Mathematics Nonparametric statistics Estimator Nonparametric regression Statistics Kernel (algebra) Regression analysis Regression Artificial intelligence Pattern recognition (psychology) Computer science

Metrics

7
Cited By
2.92
FWCI (Field Weighted Citation Impact)
33
Refs
0.84
Citation Normalized Percentile
Is in top 1%
Is in top 10%

Citation History

Topics

Advanced Statistical Methods and Models
Physical Sciences →  Mathematics →  Statistics and Probability
Statistical Methods and Inference
Physical Sciences →  Mathematics →  Statistics and Probability
Gaussian Processes and Bayesian Inference
Physical Sciences →  Computer Science →  Artificial Intelligence

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