A tight bound on concept learning

被引:5
|
作者
Takahashi, H [1 ]
Gu, HZ [1 ]
机构
[1] Univ Electrocommun, Dept Commun & Syst Engn, Chofu, Tokyo 1828585, Japan
来源
关键词
backpropagation; generalization error; interpolation dimension; neural networks; PAC learning; sample complexity; VC dimension;
D O I
10.1109/72.728362
中图分类号
TP18 [人工智能理论];
学科分类号
081104 ; 0812 ; 0835 ; 1405 ;
摘要
A tight bound on the generalization performance of concept learning is shown by a novel approach. Unlike the existing theories, the new approach uses no assumption on large sample size as in Bayesian approach and does not consider the uniform learnability as in the VC dimension analysis, We analyze the generalization performance of some particular learning algorithm that is not necessarily well behaved, in the hope that once learning curves or sample complexity of this algorithm is obtained, it is applicable to real learning situations. The result is expressed in a dimension called Boolean interpolation dimension, and is tight in the sense that it meets the lower bound requirement of Baum and Haussler, The Boolean interpolation dimension is not greater than the number of modifiable system parameters, and definable for almost all the real-world networks such as back-propagaton networks and linear threshold multilayer networks. It is shown that the generalization error follows from a beta distribution of parameters m, the number of training examples, and d, the Boolean interpolation dimension. This implies that for large d, the learning results tend to the average-case result, known as the self-averaging properly of the learning, The bound is shown to be applicable to the practical learning algorithms that can be modeled by Gibbs algorithm with a uniform prior. The result is also extended to the case of inconsistent learning.
引用
收藏
页码:1191 / 1202
页数:12
相关论文
共 50 条
  • [41] Tight bound of random interval packing
    Rhee, WT
    JOURNAL OF APPLIED PROBABILITY, 1998, 35 (04) : 990 - 997
  • [42] AN ASYMPTOTICALLY TIGHT BOUND FOR THE DAVENPORT CONSTANT
    Girard, Benjamin
    JOURNAL DE L ECOLE POLYTECHNIQUE-MATHEMATIQUES, 2018, 5 : 605 - 611
  • [43] A tight lower bound on the minimal dispersion
    Trodler, M.
    Volec, J.
    Vybiral, J.
    EUROPEAN JOURNAL OF COMBINATORICS, 2024, 120
  • [44] A tight bound for stochastic submodular cover
    Hellerstein L.
    Kletenik D.
    Parthasarathy S.
    1600, AI Access Foundation (71): : 347 - 370
  • [45] A Tight Upper Bound on Mutual Information
    Hledik, Michal
    Sokolowski, Thomas R.
    Tkacik, Gasper
    2019 IEEE INFORMATION THEORY WORKSHOP (ITW), 2019, : 70 - 74
  • [46] A tight upper bound on discrete entropy
    Division of Communications Engineering, School of EEE, Nanyang Technological University, Nanyang Avenue, Singapore 639798, Singapore
    IEEE Int Symp Inf Theor Proc, 2157, (249):
  • [47] A tight upper bound on discrete entropy
    Mow, WH
    IEEE TRANSACTIONS ON INFORMATION THEORY, 1998, 44 (02) : 775 - 778
  • [48] A tight upper bound on the number of candidate patterns
    Geerts, F
    Goethals, B
    Van den Bussche, J
    2001 IEEE INTERNATIONAL CONFERENCE ON DATA MINING, PROCEEDINGS, 2001, : 155 - 162
  • [49] A TIGHT BOUND FOR BLACK AND WHITE PEBBLES ON THE PYRAMID
    KLAWE, MM
    JOURNAL OF THE ACM, 1985, 32 (01) : 218 - 228
  • [50] Tight performance bound of AFBk bin packing
    Zhang G.
    Yue M.
    Acta Mathematicae Applicatae Sinica, 1997, 13 (4) : 443 - 446