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RISK-BASED EVOLUTIONARY BIDDING STRATEGY FOR ONLINE MULTIPLE AUCTIONS

机译:在线多重拍卖的基于风险的演化出价策略

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Many empirical studies have proofed that the agents which without programmed to adjust their bidding behaviors adaptively perform poorly in complex e-market circumstance.The paper proposed a risk-based evolutionary (RBE) bidding strategy for agents participating in multiple auctions, which is flexible and adaptive to the changing environment of online auctions.Two models were developed to determine the optimize values for different parameters of the strategy.The first one is a risk-based bidding strategy model constructed by combining two tactic functions, in which some of behavior-relative parameters adjusted adaptively according to the change of agent's risk attitude.The second one is an evolutionary model to searching for the optimal values for other parameters of the strategy.A real-valued coding genetic algorithm was proposed which shows effective searching path and rapid convergence rate.Contrasted to the other bidding strategies proposed in previous works, the (RBE) bidding strategy can adjust bidding behaviors adaptively and rapidly according to the change of the market circumstance, and perform effectively in the dynamically changing environment of multiple online auctions.
机译:许多实证研究证明,在复杂的电子市场环境中,没有编程调整其出价行为的代理商在适应性方面表现不佳。本文提出了一种基于风险的演化(RBE)出价策略,用于参与多次拍卖的代理商。开发了两个模型来确定策略的不同参数的最优值。第一个模型是通过结合两个策略函数构建的基于风险的投标策略模型,其中一些行为相对根据代理商风险态度的变化对参数进行自适应调整。第二个是演化模型,用于寻找该策略其他参数的最优值。提出了一种实值编码遗传算法,该算法显示了有效的搜索路径,收敛速度快。与先前工作中提出的其他出价策略相比,(RBE)出价策略tegy可以根据市场情况的变化而自适应地快速调整出价行为,并在不断变化的多个在线拍卖环境中有效地执行。

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