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Robust Bidding in Learning Classifier Systems Using Loan and Bid History

机译:使用贷款和出价历史记录的学习分类器系统中的强大出价

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摘要

In this paper, we introduce bid history and loan concepts to mitigate the shortcomings of the bidding strategy in traditional learning classifier systems (LCSs). In direct analogy with real auctions, all classifiers matching the current input compare the average bid history with their potential bid based on their current strength. The average bid history parameter gives general information about the auction (potential of competent classifiers) and determines the minimum loan amount a classifier should request. Debt and due date parameters have also been added to the traditional LCS parameter list to keep track of the transaction status, accuracy, and experience for granting or denying loan requests. The results obtained show a significant improvement on the convergence of the learning system.
机译:在本文中,我们介绍了出价历史记录和贷款概念,以缓解传统学习分类器系统(LCS)中的出价策略的缺点。与真实拍卖直接类比,所有与当前输入匹配的分类器都会根据其当前强度将平均出价历史记录与潜在出价进行比较。平均出价历史记录参数提供有关拍卖的一般信息(胜任的分类器的潜力),并确定分类器应请求的最低贷款额。债务和到期日参数也已添加到传统的LCS参数列表中,以跟踪交易状态,准确性和授予或拒绝贷款请求的经验。获得的结果显示了学习系统收敛性的显着改善。

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  • 来源
    《Complex Systems》 |2011年第3期|p.287-303|共17页
  • 作者单位

    Autonomous Control and Information Technology Center Department of Electrical and Computer Engineering North Carolina A & T State University Greensboro, NC 27411;

    Autonomous Control and Information Technology Center Department of Electrical and Computer Engineering North Carolina A & T State University Greensboro, NC 27411;

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