Stability in biomarker discovery: does ensemble feature selection really help?

DESSI, NICOLETTA;PES, BARBARA
2015-01-01

Abstract

Ensemble feature selection has been recently explored as a promising paradigm to improve the stability, i.e. the robustness with respect to sample variation, of subsets of informative features extracted from high-dimensional domains including genetics and medicine. Though recent literature discusses a number of cases where ensemble approaches seem to be capable of providing more stable results, especially in the context of biomarker discovery, there is a lack of systematic studies aiming at providing insight on when, and to which extent, the use of an ensemble method is to be preferred to a simple one. Using a well-known benchmark from the genomics domain, this paper presents an empirical study which evaluates ten selection methods, representatives of different selection approaches, investigating if they get significantly more stable when used in an ensemble fashion. Results of our study provide interesting indications on benefits and limitations of the ensemble paradigm in terms of stability.
2015
Inglese
Current approaches in applied artificial intelligence
978-3-319-19065-5
Springer International Publishing
Moonis Ali, Young Sig Kwon, Chang-Hwan Lee, Juntae Kim, Yongdai Kim
9101
191
200
10
http://link.springer.com/chapter/10.1007%2F978-3-319-19066-2_19
28th International Conference on Industrial, Engineering and Other Applications of Applied Intelligent Systems, IEA/AIE 2015
Contributo
Esperti anonimi
June 10-12, 2015
Seoul, South Korea
internazionale
scientifica
Ensemble feature selection; Feature selection stability; Biomarker discovery; High-dimensional data
no
4 Contributo in Atti di Convegno (Proceeding)::4.1 Contributo in Atti di convegno
Dessi, Nicoletta; Pes, Barbara
273
2
4.1 Contributo in Atti di convegno
reserved
info:eu-repo/semantics/conferencePaper
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