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Cross-layer Design for Wireless Mesh Networks with Advanced Physical and Network Layer Techniques

机译:具有高级物理和网络层技术的无线网状网络的跨层设计

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摘要

Cross-layer optimization is an essential tool for designing wireless network protocols. We present a cross-layer optimization framework for wireless networks where at each node, various smart antenna techniques such as beam-forming, spatial division multiple access and spatial division multiplexing are employed. These techniques provide interference suppression, capability for simultaneous communication with several nodes and transmission with higher data rates, respectively. Byudintegrating different combinations of these multi-antenna techniques in physical layer with various constraints from MAC and network layers, three Mixed Integer LinearudProgramming models are presented to minimize the scheduling period. Since these optimization problems are combinatorially complex, the optimal solution is approached by a Column Generation (CG) decomposition method. Our numerical results show that the resulted directive, multiple access and multiplexing gains combinedudwith scheduling, effectively increase both the spatial reuse and the capacity of the links and therefore enhance the achievable system throughput.ududThe introduced cross-layer approach is also extended to consider heterogeneous networks where we present a multi-criteria optimization framework to model the design problem with an objective of jointly minimizing the cost of deployment and the scheduling period. Our results reveal the significant benefits of this joint design method.ududWe also investigate the achievable performance gain that network coding (with opportunistic listening) when combined with Successive Interference Cancellation (SIC) brings to a multi-hop wireless network. We develop a cross-layer formulation in which SIC enables concurrent receptions from multiple transmitters and network coding reduces the transmission time-slot for minimizing the scheduling time. To solve this combinatorially complex non-linear problem, we decompose it to two linear sub-problems; namely opportunistic network coding aware routing, and schedulingudsub-problems. Our results affirm our expectation for a remarkable performance improvement when both techniques are jointly used.ududFurther, we develop an optimization model for combining SIC with power control (PC). Our model optimally adjusts the transmission power of nodes to avoid interference on unintended receivers and properly embraces undesired interference through SIC. Therefore, it provides a balance between usage of PC and SIC at the transmitting and receiving sides, respectively. Our results show considerableudthroughput improvement in dense and heavily loaded networks.
机译:跨层优化是设计无线网络协议的必要工具。我们提出了一种用于无线网络的跨层优化框架,其中在每个节点处采用了各种智能天线技术,例如波束形成,空分多址和空分复用。这些技术分别提供干扰抑制,与多个节点同时通信和更高数据传输速率的能力。通过在物理层中对这些多天线技术的不同组合进行集成,并受到来自MAC和网络层的各种约束,提出了三种混合整数线性编程模型以最小化调度周期。由于这些优化问题组合起来很复杂,因此可以通过列生成(CG)分解方法来寻求最佳解决方案。我们的数值结果表明,所得到的指令,多路访问和多路复用增益与调度相结合,可以有效地增加空间的复用和链接的容量,从而提高可达到的系统吞吐量。扩展到考虑异构网络,在该网络中,我们提出了一个多准则优化框架来对设计问题进行建模,目的是共同最小化部署成本和调度周期。我们的结果揭示了这种联合设计方法的显着优势。 ud ud我们还研究了与连续干扰消除(SIC)结合使用时,网络编码(带有机会监听)带来的可实现的性能提升。我们开发了一种跨层公式,其中SIC支持从多个发射机同时进行接收,并且网络编码减少了传输时隙,从而最大程度地缩短了调度时间。为了解决这个组合复杂的非线性问题,我们将其分解为两个线性子问题。即机会网络编码感知路由,以及调度 udsub问题。我们的结果肯定了我们希望在同时使用这两种技术时能够显着提高性能。 ud ud此外,我们开发了一种将SIC与功率控制(PC)相结合的优化模型。我们的模型可以最佳地调整节点的传输功率,以避免对意外接收器的干扰,并适当地包含通过SIC产生的不希望有的干扰。因此,它在发送侧和接收侧分别在PC和SIC的使用之间实现了平衡。我们的结果表明,在密集和重负载的网络中,相当大的吞吐量提高。

著录项

  • 作者

    Yazdanpanah Mina;

  • 作者单位
  • 年度 2012
  • 总页数
  • 原文格式 PDF
  • 正文语种 en
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