易学性与Vapnik-Chervonenkis维度的研究结果

N. Linial, Y. Mansour, R. Rivest
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引用次数: 97

摘要

研究了无分布模型中从实例中学习概念的问题。引入了动态采样的概念,其中检查的示例数量可以随着目标概念的复杂性而增加。该方法用于建立具有无限VC维的各种概念类的可学习性。本文还讨论了从例子中学习问题的一个重要变体,即从例子中近似。研究了有限域上有限概念集的VC维计算问题。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Results on learnability and the Vapnik-Chervonenkis dimension
The problem of learning a concept from examples in a distribution-free model is considered. The notion of dynamic sampling, wherein the number of examples examined can increase with the complexity of the target concept, is introduced. This method is used to establish the learnability of various concept classes with an infinite Vapnik-Chervonenkis (VC) dimension. An important variation on the problem of learning from examples, called approximating from examples, is also discussed. The problem of computing the VC dimension of a finite concept set defined on a finite domain is considered.<>
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