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Distributed rate allocation in MISO cognitive networks

机译:MISO认知网络中的分布式速率分配

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We consider multiple-input-single-output (MISO) cognitive radio networks that have been conferred concurrent spectrum access with the primary (licensed) users. We treat the problem of distributed rate allocation in the cognitive network such that some notions of optimality and fairness are sustained and the interference imposed on the primary users is tightly controlled. Allowing multi-user decoding at each cognitive (secondary) receiver, we provide an explicit formulation for the rate allocation problem which seeks to maximize the minimum assigned secondary user rate. Unfortunately, the resulting optimization problem is non-convex and hence cannot be solved efficiently even with centralized processing. As a remedy, we propose a distributed two-stage suboptimal approach. In the first stage, assuming that each secondary user employs single-user decoding, we design optimal secondary beamformers in a distributed manner, such the primary interference margin constraints and a secondary power budget constraint are satisfied and the minimum secondary user rate is maximized. In the second step, we let the secondary users employ multi-user decoding, which allows them to support higher rates beyond those achieved via single-user decoding. We then offer optimal distributed and low-complexity algorithms for fairly allocating these potential excess rates among the secondary users.
机译:我们考虑多输入单输出(MISO)认知无线电网络,该网络已被授予主要(许可)用户的并发频谱访问权限。我们对待认知网络中的分布式费率分配问题进行处理,以使最优性和公平性的某些概念得以维持,并严格控制对主要用户的干扰。允许在每个认知(辅助)接收器处进行多用户解码,我们为速率分配问题提供了一个明确的公式,旨在最大程度地分配最小分配的辅助用户速率。不幸的是,由此产生的优化问题是非凸的,因此即使使用集中处理也无法有效解决。作为一种补救措施,我们提出了一种分布式两阶段次优方法。在第一阶段,假设每个辅助用户都使用单用户解码,我们以分布式方式设计最佳的辅助波束形成器,从而满足了主要干扰余量约束和辅助功率预算约束,并且最小化了辅助用户率最大化。在第二步中,我们让二级用户使用多用户解码,这使他们能够支持比通过单用户解码实现的更高的速率。然后,我们提供最佳的分布式和低复杂度算法,以在次要用户之间公平地分配这些潜在的超额费用。

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