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RISK-BASED EVOLUTIONARY BIDDING STRATEGY FOR ONLINE MULTIPLE AUCTIONS

机译:基于风险的进化竞标策略,用于在线多次拍卖

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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:许多实证研究论证了其无编程来调整自己的行为,招标代理适应在复杂的电子市场circumstance.The纸表现不佳,提出了基于风险的进化(RBE)投标代理商参与多个拍卖战略,这是灵活的,适应在线拍卖的改变环境。开发了WO模型以确定策略的不同参数的优化值。第一个是通过组合两个策略函数构成的基于风险的招标策略模型,其中一些行为相对根据代理人的风险态度的变化,适自适应的参数。第二个是寻找策略的其他参数的最佳值的进化模型。提出了一种实际值编码遗传算法,其显示有效的搜索路径和快速收敛速率。适用于以前的作品中提出的其他招标策略,(RBE)招标司司反装TEGY可以根据市场环境的变化,自适应且快速地调整招标行为,并在多次在线拍卖的动态变化环境中有效地执行。

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