Automated Negotiation Decision Model Based on Machine Learning
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    Abstract:

    The proposed model labels the negotiation history data automatically by making full use of the implicit information in negotiation history. Then, the labeled data become the training samples of least-squares support vector machine that outputs the estimation of opponent’s utility function. After that, the self’s utility function and the estimation of opponent’s utility function constitute a constraint optimization problem that will be further figured out by genetic algorithm. The optimal solution is the counter-offer of oneself. Experimental results show that the proposed model is effective and efficient in environments where information is private and the prior knowledge is not available.

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程昱,高济,古华茂,傅朝阳.基于机器学习的自动协商决策模型.软件学报,2009,20(8):2160-2169

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History
  • Received:October 22,2007
  • Revised:April 15,2008
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