Stochastic dominance-based rough set model for ordinal classification

被引:115
作者
Kotlowski, Wojciech [1 ]
Dembczynski, Krzysztof [1 ]
Greco, Salvatore [2 ]
Slowinski, Roman [1 ,3 ]
机构
[1] Poznan Univ Tech, Inst Comp Sci, PL-60965 Poznan, Poland
[2] Univ Catania, Fac Econ, I-95129 Catania, Italy
[3] Polish Acad Sci, Syst Res Inst, PL-01447 Warsaw, Poland
关键词
dominance-based rough set approach; ordinal classification; monotonicity constraints; isatanic regression; maximum likelihood estimation; variable consistency models; statistical decision theory; empirical risk minimization; multiple criteria decision analysis;
D O I
10.1016/j.ins.2008.06.013
中图分类号
TP [自动化技术、计算机技术];
学科分类号
0812 ;
摘要
In order to discover interesting patterns and dependencies in data, an approach based on rough set theory can be used. In particular, dominance-based rough set approach (DRSA) has been introduced to deal with the problem of ordinal classification with monotonicity constraints (also referred to as multicriteria classification in decision analysis). However, in real-life problems, in the presence of noise, the notions of rough approximations were found to be excessively restrictive. in this paper, we introduce a probabilistic model for ordinal classification problems with monotonicity constraints. Then, we generalize the notion of lower approximations to the stochastic case. We estimate the probabilities with the maximum likelihood method which leads to the isotonic regression problem for a two-class (binary) case. The approach is easily generalized to a multi-class case. Finally, we show the equivalence of the variable consistency rough sets to the specific empirical risk-minimizing decision rule in the statistical decision theory. (C) 2008 Elsevier Inc. All rights reserved.
引用
收藏
页码:4019 / 4037
页数:19
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