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Optimization-Based Methods for Improving the Accuracy and Outcome of Learning in Electronic Procurement Negotiations

机译:基于优化的电子采购谈判中提高学习准确性和结果的方法

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Empirical observations as well as theoretical analysis suggest that negotiation outcome in buyer–supplier situations can be improved by having accurate knowledge about the behavior of one''s counterpart (i.e., negotiation partner). Yet, there is a paucity of research works dealing with the incorporation of learning methods into electronic procurement technologies, especially methods that can work with small amounts of information. This paper presents an application of nonlinear optimization for learning the parameters of a common negotiation decision function. Then, to show the usefulness of learning in a procurement–negotiation interaction, we outline a reaction algorithm that seeks to improve outcome. Detailed computational results with both the learning and reaction algorithms are conducted to demonstrate the viability of our approach.
机译:经验观察和理论分析表明,通过准确了解对方(即谈判伙伴)的行为,可以改善买方-供应商情况下的谈判结果。然而,很少有研究工作将学习方法结合到电子采购技术中,特别是可以处理少量信息的方法。本文介绍了非线性优化在学习通用协商决策函数参数中的应用。然后,为了展示学习在采购-谈判互动中的有用性,我们概述了一种寻求改善结果的反应算法。使用学习算法和反应算法进行详细的计算结果,以证明我们方法的可行性。

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