Guest editorial: Learning theory

被引:0
|
作者
Bousquet, Olivier
Elisseeff, Andre
机构
[1] Pertinence, F-75002 Paris, France
[2] IBM Corp, Zurich Res Lab, CH-8803 Ruschlikon, Switzerland
关键词
D O I
10.1007/s10994-007-0753-2
中图分类号
TP18 [人工智能理论];
学科分类号
081104 ; 0812 ; 0835 ; 1405 ;
摘要
This statistical learning theory frameworks that are used when the examples are not provided sequentially are discussed. A new PAC Bound framework for Intersection-Closed Concepts Classes is introduced that will provide a number of examples that are needed for an algorithm to achieve a given accuracy in its prediction. The framework provide an improved bound for inspection closed concept classes of binary valued functions closed by product of a combinatorial parameter describing the effectiveness of the class. Model selection by Bootstrap Penalization for Classification derives the finite sample error bounds for model selection, that is a problem of automatically choosing the best class of concepts in a collection of such classes. Machine learning theories are becoming important as many of the problems, such as multiclass extension and realistic setting binary classification remain largely under-investigated.
引用
收藏
页码:115 / 118
页数:4
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