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On imperfect pricing in globally constrained noncooperative games for cognitive radio networks

机译:认知无线电网络在全球受限的非合作游戏中的不完全定价问题

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摘要

Pricing is often used in noncooperative games or Nash equilibrium problems (NEPs) to meet global constraints in cognitive radio networks. In this paper, we analyze the pricing mechanism for a class of solvable NEPs with global constraints, called monotone NEPs. In contrast to the ideal assumption of perfect measure of pricing functions, in practice pricing functions are often imperfectly known and subject to uncertainty. We theoretically analyze the impacts of bounded uncertainty and price-updating step sizes of imperfect pricing in globally constrained NEPs for cognitive radio networks.
机译:定价通常用于非合作博弈或纳什均衡问题(NEP)中,以满足认知无线电网络中的全局约束。在本文中,我们分析了一类具有全局约束的可解决NEP的定价机制,称为单调NEP。与理想的定价功能的理想假设相反,在实践中,定价功能通常是不完善的,并且存在不确定性。我们从理论上分析了认知无线电网络在全球受约束的NEP中不完全定价的有限不确定性和价格更新步长的影响。

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