Bounds on the moments for an ensemble of random decision trees

被引:0
|
作者
Amit Dhurandhar
机构
[1] IBM T.J. Watson,
来源
Knowledge and Information Systems | 2015年 / 44卷
关键词
Bounds; Random decision trees; Moments;
D O I
暂无
中图分类号
学科分类号
摘要
An ensemble of random decision trees is a popular classification technique, especially known for its ability to scale to large domains. In this paper, we provide an efficient strategy to compute bounds on the moments of the generalization error computed over all datasets of a particular size drawn from an underlying distribution, for this classification technique. Being able to estimate these moments can help us gain insights into the performance of this model. As we will see in the experimental section, these bounds tend to be significantly tighter than the state-of-the-art Breiman’s bounds based on strength and correlation and hence more useful in practice.
引用
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页码:279 / 298
页数:19
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