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A survey on feature selection methods for mixed data

delete2021-09-29
delete27
PRE
AI
S
Saúl Solorio-Fernández *
C
Carrasco-Ochoa, J. Ariel
M
Martinez-Trinidad, Jose Francisco
DOI:10.1007/s10462-021-10072-6delete
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摘要

摘要

En 中文
Feature Selection for mixed data is an active research area with many applications in practical problems where numerical and non-numerical features describe the objects of study. This paper provides the first comprehensive and structured revision of the existing supervised and unsupervised feature selection methods for mixed data reported in the literature. Additionally, we present an analysis of the main characteristics, advantages, and disadvantages of the feature selection methods reviewed in this survey and discuss some important open challenges and potential future research opportunities in this field.
Keyword:
Feature selection
Mixed data
Feature selection for mixed data
Dimensionality reduction

期刊

Artificial Intelligence Review 封面图
Artificial Intelligence Review
IF:
13.9
论文数:
6.1K
被引数:
1.9W

机构

I
instituto nacional de astrofisica, optica y electronica
学者数:
1.7K
论文数: 1.5K
被引数: 1
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