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Robust Cooperative Relaying in a Wireless LAN: Cross-Layer Design and Performance Analysis

机译:无线局域网中的强大协作中继:跨层设计和性能分析

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A key technology in cooperative communications is distributed space-time coding (DSTC) which achieves spatial diversity gain from multiple relays. A novel DSTC, called randomized distributed space-time coding (R-DSTC), shows considerable advantages over a regular DSTC in terms of system complexity. In this paper, we exploit the benefits of R-DSTC physical (PHY) layer and develop a distributed and opportunistic medium access control (MAC) layer protocol for R-DSTC deployment in an IEEE 802.11 wireless local area network (WLAN). Unlike other cooperative MAC designs, in our proposed PHY-MAC cross-layer framework, there is no need to decide which stations will serve as relays before each packet transmission. Instead, the MAC layer opportunistically recruits relay stations on the fly; any station that receives a packet from the source correctly forwards it to the destination. Through extensive simulations, we validate the efficiency of our MAC layer protocol and demonstrate that network capacity and delay performance is considerably improved with respect to legacy IEEE 802.11g network.
机译:协作通信中的一项关键技术是分布式空时编码(DSTC),它可以从多个中继获得空间分集增益。一种新颖的DSTC,称为随机分布式时空编码(R-DSTC),在系统复杂性方面显示出比常规DSTC更大的优势。在本文中,我们充分利用了R-DSTC物理(PHY)层的优势,并开发了用于IEEE 802.11无线局域网(WLAN)中R-DSTC部署的分布式机会性媒体访问控制(MAC)层协议。与其他协作MAC设计不同,在我们提出的PHY-MAC跨层框架中,无需在每次数据包传输之前确定哪些站将用作中继站。取而代之的是,MAC层适时地招募了中继站。任何从源接收到数据包的站都将其正确转发到目的地。通过广泛的仿真,我们验证了MAC层协议的效率,并证明与传统的IEEE 802.11g网络相比,网络容量和延迟性能得到了显着提高。

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