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When Spectrum Meets Clouds: Optimal Session Based Spectrum Trading under Spectrum Uncertainty

机译:当频谱遇到云:频谱不确定性下基于最佳会话的频谱交易

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摘要

Spectrum trading creates more accessing opportunities for secondary users (SUs) and economically benefits the primary users (PUs). However, it is challenging to implement spectrum trading in multi-hop cognitive radio networks (CRNs) due to harsh cognitive radio (CR) requirements on SUs' devices, uncertain spectrum supply from PUs and complex competition relationship among different CR sessions. Unlike the per-user based spectrum trading designs in previous studies, in this paper, we propose a novel session based spectrum trading system, spectrum clouds, in multi-hop CRNs. In spectrum clouds, we introduce a new service provider, secondary service provider (SSP), to facilitate the accessing of SUs without CR capability and harvest uncertain spectrum supply. The SSP also conducts spectrum trading among CR sessions w.r.t. their conflicts and competitions. Leveraging a 3-dimensional (3-D) conflict graph, we mathematically describe the conflicts and competitions among the candidate sessions for spectrum trading. Given the rate requirements and bidding values of candidate trading sessions, we formulate the optimal spectrum trading into the SSP's revenue maximization problem under multiple cross-layer constraints. In view of the NP-hardness of the problem, we develop heuristic algorithms to pursue feasible solutions. Through extensive simulations, we show that the solutions found by the proposed algorithms are close to the optimal one.
机译:频谱交易为二级用户(SU)创造了更多的访问机会,并在经济上使一级用户(PU)受益。但是,由于对SU设备的苛刻的认知无线电(CR)要求,来自PU的不确定频谱供应以及不同CR会话之间的复杂竞争关系,在多跳认知无线电网络(CRN)中实现频谱交易具有挑战性。与以前的研究中基于用户的频谱交易设计不同,在本文中,我们提出了一种基于多会话CRN的新颖的基于会话的频谱交易系统,即频谱云。在频谱云中,我们引入了一个新的服务提供商,即二级服务提供商(SSP),以方便没有CR能力的SU的访问,并获得不确定的频谱供应。 SSP还可以在CR会话之间进行频谱交易他们的冲突和竞争。利用3维(3-D)冲突图,我们在数学上描述了频谱交易候选会话之间的冲突和竞争。给定候选交易时段的汇率要求和出价值,我们在多个跨层约束下,将最佳频谱交易公式化为SSP的收益最大化问题。鉴于问题的NP难点,我们开发了启发式算法来寻求可行的解决方案。通过广泛的仿真,我们表明,所提出的算法找到的解决方案接近于最佳解决方案。

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