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Selected Robust Logistic Regression Specification for Classification of Multi‑dimensional Functional Data in Presence of Outlier

Mirosław Krzyśko et al · Lodz University Press · 2018

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In this paper, the binary classification problem of multi‑dimensional functional data is considered. To solve this problem a regression technique based on functional logistic regression model is used. This model is re‑expressed as a particular logistic regression model by using the basis expansions of functional coefficients and explanatory variables. Based on re‑expressed model, a classification rule is proposed. To handle with outlying observations, robust methods of estimation of unknown parameters are also considered. Numerical experiments suggest that the proposed methods may behave satisfactory in practice.

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APA 7

al, M. K. E. (2018). Selected Robust Logistic Regression Specification for Classification of Multi‑dimensional Functional Data in Presence of Outlier. https://doi.org/10.18778/0208-6018.334.04

MLA

al, Mirosław Krzyśko et. "Selected Robust Logistic Regression Specification for Classification of Multi‑dimensional Functional Data in Presence of Outlier." 2018. https://doi.org/10.18778/0208-6018.334.04.

Chicago

al, Mirosław Krzyśko et. 2018. "Selected Robust Logistic Regression Specification for Classification of Multi‑dimensional Functional Data in Presence of Outlier.". https://doi.org/10.18778/0208-6018.334.04.

Harvard

al, M. K. E. 2018, Selected Robust Logistic Regression Specification for Classification of Multi‑dimensional Functional Data in Presence of Outlier, Lodz University Press, available at: https://doi.org/10.18778/0208-6018.334.04 [Accessed 8 Aug. 2026].

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Title
Selected Robust Logistic Regression Specification for Classification of Multi‑dimensional Functional Data in Presence of Outlier
Author / contributors
Mirosław Krzyśko et al
Publisher
Lodz University Press
Publication year
2018
ISSN
0208-6018
ISSN
0208-6018
Language
English

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