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Naieve Bayes Ensembles with a Random Oracle

机译:天真贝叶斯与随机Oracle集成

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摘要

Ensemble methods with Random Oracles have been proposed recently (Kuncheva and Rodriguez, 2007). A random-oracle classifier consists of a pair of classifiers and a fixed, randomly created oracle that selects between them. Ensembles of random-oracle decision trees were shown to fare better than standard ensembles. In that study, the oracle for a given tree was a random hyperplane at the root of the tree. The present work considers two random oracles types (linear and spherical) in ensembles of Naive Bayes Classifiers (NB). Our experiments show that ensembles based solely upon the spherical oracle (and no other ensemble heuristic) outrank Bagging, Wagging, Random Subspaces, AdaBoost.Ml, MultiBoost and Decorate. Moreover, all these ensemble methods are better with any of the two random oracles than their standard versions without the oracles.
机译:最近已经提出了使用随机Oracle的集成方法(Kuncheva和Rodriguez,2007)。随机预言分类器由一对分类器和一个在它们之间进行选择的固定的,随机创建的预言器组成。随机预言决策树的集成度比标准集成度更好。在该研究中,给定树的预言是树根处的随机超平面。本工作在朴素贝叶斯分类器(NB)的集合中考虑了两种随机预言类型(线性和球形)。我们的实验表明,仅基于球形预言集(而没有其他合奏启发式)的合奏比Bagging,Waging,Random Subspaces,AdaBoost.Ml,MultiBoost和Decorate的排名更高。而且,与没有oracle的标准版本相比,使用这两个随机oracle的所有这些集成方法都更好。

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