基于判别指数的k -最近局部预言机动态集成选择

Marcelo Pereira, A. Britto, Luiz Oliveira, R. Sabourin
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引用次数: 7

摘要

这项工作描述了一种新的基于oracle的动态集成选择(DES)方法,其中选择一个分类器集成(EoC)来预测给定测试实例(xt)的类。每个分类器的能力是根据最初在项目和测试分析(ITA)理论中提出的歧视指数(D),在与xt相关的最有希望的k个近邻(或顾问)所代表的特征空间(能力区域- RoC)的局部区域(LR)上估计的。D值用于更好地定义RoC的顾问,因为它们将建议分类器(本地预言机)来组成EoC。基于30个分类问题和20个重复的鲁棒实验方案表明,所提出的DES与15种最先进的动态选择方法和池中所有分类器的组合相比具有优势。
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Dynamic Ensemble Selection by K-Nearest Local Oracles with Discrimination Index
This work describes a new oracle based Dynamic Ensemble Selection (DES) method in which an Ensemble of Classifiers (EoC) is selected to predict the class of a given test instance (xt). The competence of each classifier is estimated on a local region (LR) of the feature space (Region of Competence - RoC) represented by the most promising k-nearest neighbors (or advisors) related to xt according to a discrimination index (D) originally proposed in the Item and Test Analysis (ITA) theory. The D value is used to better define the advisors of the RoC since they will suggest the classifiers (local oracles) to compose the EoC. A robust experimental protocol based on 30 classification problems and 20 replications have shown that the proposed DES compares favorably with 15 state-of-the-art dynamic selection methods and the combination of all classifiers in the pool.
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