We consider an opportunistic cognitive radio network, consisting of Nu secondary users (SUs) and an access point (AP), that can access a spectrum band licensed to a primary user. Each SU is capable of harvesting energy, and is equipped with a finite size battery, for energy storage. The SUs operate under a time-slotted scheme, where each time slot consists of three non-overlapping phases: spectrum sensing phase, channel probing phase, and data transmission phase. The AP feeds back its estimates of fading coefficients of SUs-AP link to SUs. To strike a balance between the energy harvesting and the energy consumption, we propose a parameterized power control strategy that allows each SU to adapt its power, according to the feedback information and its stored energy. Modeling the randomly arriving energy packets during a time slot as a Poisson process, we establish a lower bound on the achievable sum-rate of SUs-AP links, in the presence of both spectrum sensing and channel estimation errors. We optimize the parameters of the proposed power control strategy, such that the derived sum-rate lower bound is maximized, subject to an interference constraint. Via simulations, we corroborate our analysis and explore spectrum sensing-channel probing-data transmission trade-offs.
翻译:我们考虑的是机会性认知无线电网络,由努二次用户(SUs)和一个接入点(AP)组成,它可以进入一个特许给初级用户使用的频谱带。每个SU都有能力收获能源,并配有一定大小的电池,用于能源储存。SUS在一个时间档计划下运作,每个时档都由三个非重叠阶段组成:频谱探测阶段、频道探测阶段和数据传输阶段。AP为SU-AP连接到SUs的衰减系数估计数提供反馈。为了在能源收获和能源消耗之间取得平衡,我们提议了一个参数化的电力控制战略,使每个SUSU能够根据反馈信息及其储存的能量调整其电力。在Poisson进程的一个时档期间随机抵达的能源包建模,我们在光谱遥感和频道估计错误的两种情况下,对SU-AP连接的可实现总和率设定一个较低的约束。我们优化了拟议电力控制战略的参数,以便根据干扰程度限制,使所得的低比例限制,从而能够调整其电力的能量。Viachanal交易传输。