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Robust energy efficiency power allocation algorithm for cognitive radio networks with rate constraints

机译:具有速率约束的认知无线电网络的鲁棒能效功率分配算法

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Most of traditional power allocation algorithms in the cognitive radio networks (CRNs) are often based on the assumption of perfect channel estimation. We investigate the power allocation algorithm by considering channel gain uncertainty where a primary ad-hoc network working in parallel with a secondary ad-hoc network. Reducing interference and saving energy are essential in radio resource management of cognitive radio networks. The objective is to minimum transmit power while guaranteeing both acceptable transmission data rate for secondary users (SUs) and interference constraints for primary users (PUs). Imperfect channel state information is considered by ellipsoid sets and the problem can be formulated to a second-order cone programming problem. We can solve the robust power allocation problem by a distributed algorithm efficiently. Numerical results verify that the proposed algorithm with rate constraints can get higher transmission performance for SUs.
机译:认知无线电网络(CRN)中的大多数传统功率分配算法通常基于完美信道估计的假设。我们通过考虑主自组织网络与次自组织网络并行工作的信道增益不确定性来研究功率分配算法。在认知无线电网络的无线电资源管理中,减少干扰和节省能源至关重要。目标是最小化发射功率,同时保证次要用户(SU)可接受的传输数据速率和主要用户(PU)的干扰约束。椭圆集考虑了不完善的信道状态信息,可以将该问题表述为二阶锥规划问题。我们可以通过分布式算法有效地解决鲁棒的功率分配问题。数值结果验证了所提出的具有速率约束的算法能够获得较高的SU传输性能。

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