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首页> 外文期刊>IEEE transactions on wireless communications >Fast-Lipschitz Power Control and User-Frequency Assignment in Full-Duplex Cellular Networks
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Fast-Lipschitz Power Control and User-Frequency Assignment in Full-Duplex Cellular Networks

机译:全双工蜂窝网络中的快速Lipschitz功率控制和用户频率分配

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摘要

In cellular networks, the three-node full-duplex transmission mode has the potential to increase spectral efficiency without requiring full-duplex capability of users. Consequently, three-node full-duplex in cellular networks must deal with self-interference and user-to-user interference, which can be managed by power control and user-frequency assignment techniques. This paper investigates the problem of maximizing the sum spectral efficiency by jointly determining the transmit powers in a distributed fashion, and assigning users to frequency channels. The problem is formulated as a mixed-integer nonlinear problem, which is shown to be non-deterministic polynomial-time hard. We investigate a close-to-optimal solution approach by dividing the joint problem into a power control problem and an assignment problem. The power control problem is solved by Fast-Lipschitz optimization, while a greedy solution with guaranteed performance is developed for the assignment problem. Numerical results indicate that compared with the half-duplex mode, both spectral and energy efficiencies of the system are increased by the proposed algorithm. Moreover, results show that the power control and assignment solutions have important, but opposite roles in scenarios with low or high self-interference cancellation. When the self-interference cancellation is high, user-frequency assignment is more important than power control, while power control is essential at low self-interference cancellation.
机译:在蜂窝网络中,三节点全双工传输模式具有提高频谱效率的潜力,而无需用户的全双工能力。因此,蜂窝网络中的三节点全双工必须处理自干扰和用户对用户的干扰,这可以通过功率控制和用户频率分配技术进行管理。本文研究了通过以分布式方式共同确定发射功率并将用户分配给频道来最大化总频谱效率的问题。该问题被表述为混合整数非线性问题,证明它是不确定的多项式时间。我们通过将联合问题分为功率控制问题和分配问题来研究一种接近最佳的解决方案。功率控制问题通过Fast-Lipschitz优化解决,而贪婪的解决方案则为分配问题开发了具有保证性能的解决方案。数值结果表明,与半双工模式相比,该算法提高了系统的频谱效率和能效。而且,结果表明,在具有低或高自干扰消除的场景中,功率控制和分配解决方案具有重要但相反的作用。当自干扰消除较高时,用户频率分配比功率控制更为重要,而功率控制在低自干扰消除中至关重要。

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