A theoretical analysis of feature fusion in Stacked Generalization

M. Ozay, Fatoş T. Yarman Vural
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引用次数: 2

Abstract

In the present work, a theoretical framework in order to define the general performance of stacked generalization learning algorithm is developed. Analytical relationships between the performance of the Stacked Generalization classifier relative to the individual classifiers are constructed by the proposed theorems and the practical techniques are developed in order to optimize the performance of stacked generalization algorithm based on these relationships.
堆叠泛化中特征融合的理论分析
在本工作中,为了定义堆叠泛化学习算法的一般性能,提出了一个理论框架。利用所提出的定理,构建了堆叠泛化分类器性能与单个分类器性能之间的分析关系,并开发了基于这些关系优化堆叠泛化算法性能的实用技术。
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