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Bio-Inspired Resource Allocation for Relay-Aided Device-to-Device Communications

机译:受生物启发的资源分配,用于中继设备之间的通信

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摘要

The Device-to-Device (D2D) communication principle is a key enabler of direct localized communication between mobile nodes and is expected to propel a plethora of novel multimedia services. However, even though it offers a wide set of capabilities mainly due to the proximity and resource reuse gains, interference must be carefully controlled to maximize the achievable rate for coexisting cellular and D2D users. The scope of this work is to provide an interference- aware real- time resource allocation (RA) framework for relay- aided D2D communications that underlay cellular networks. The main objective is to maximize the overall network throughput by guaranteeing a minimum rate threshold for cellular and D2D links. To this direction, genetic algorithms (GAs) are proven to be powerful and versatile methodologies that account for not only enhanced performance but also reduced computational complexity in emerging wireless networks. Numerical investigations highlight the performance gains compared to baseline RA methods and especially in highly dense scenarios which will be the case in future 5G networks.
机译:设备到设备(D2D)通信原理是移动节点之间直接本地通信的关键推动力,并且有望推动大量新颖的多媒体服务。但是,即使它主要由于邻近性和资源重用收益而提供了广泛的功能,也必须谨慎地控制干扰,以使蜂窝和D2D用户共存的可达到的速率最大化。这项工作的范围是为基于蜂窝网络的中继辅助D2D通信提供一个感知干扰的实时资源分配(RA)框架。主要目标是通过保证蜂窝和D2D链路的最小速率阈值来最大化整体网络吞吐量。为此,遗传算法(GA)被证明是功能强大且用途广泛的方法,不仅解决了新兴无线网络中增强的性能而且降低了计算复杂性的问题。数值研究突出显示了与基准RA方法相比的性能提升,尤其是在高度密集的情况下,未来的5G网络将是如此。

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