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Mapping link SNRs of real-world wireless networks onto an indoor testbed

机译:将真实无线网络的链路SNR映射到室内测试台上

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摘要

Network simulation packages such as NS-2 and OPNET have been shown to be a limited option for cross-layer experimentation in wireless networking because they cannot faithfully capture the propagation and interference characteristics of wireless channels [1]. Recent research on network cross-layer optimizations further raises this concern due to the close interaction between physical layer feedback and higher layer protocols. To overcome this shortcoming, wireless testbeds have been used wherein novel protocols and application concepts can be assessed in a realistic environment under controlled and repeatable conditions. Since average signal-to-noise-ratio (SNR) often determines the performance of a wireless link, our goal is to seek link SNR mapping methods that replicate real-world link SNRs onto an indoor testbed. Specifically, we devise and assess link SNR mapping methodologies for two different applications: hierarchical networks with a fixed access point (AP), and mesh networks. For the AP-based networks, we employ the minimum weight matching algorithm to minimize the root-mean-square (RMS) mapping error between the testbed and real-world SNRs. For the mesh networks, to avoid the technical difficulties inherent in “forward mapping”, we develop a “reverse mapping” method by which we turn a testbed configuration with specified link SNRs into a real-world configuration. By inducing the link gain difference between the testbed and the real-world distance-dependent path loss to have a log-normal distribution, a very close approximation to real-world shadow fading is achieved. We present results for a variety of indoor and outdoor real-world scenarios to demonstrate the generality of our method.
机译:网络仿真程序包(如NS-2和OPNET)已被证明是无线网络中跨层实验的一种有限选择,因为它们无法如实地捕获无线信道的传播和干扰特征[1]。由于物理层反馈与高层协议之间的紧密交互,因此对网络跨层优化的最新研究进一步引起了人们的关注。为了克服该缺点,已经使用了无线测试台,其中可以在受控和可重复的条件下的实际环境中评估新颖的协议和应用概念。由于平均信噪比(SNR)通常决定无线链路的性能,因此我们的目标是寻求将实际链路SNR复制到室内测试台的链路SNR映射方法。具体来说,我们为两种不同的应用设计和评估链路SNR映射方法:具有固定访问点(AP)的分层网络和网状网络。对于基于AP的网络,我们采用最小权重匹配算法来最小化测试平台与实际SNR之间的均方根(RMS)映射误差。对于网状网络,为了避免“正向映射”固有的技术难题,我们开发了“反向映射”方法,通过该方法,我们可以将具有指定链路SNR的测试平台配置转换为实际配置。通过使测试平台与实际距离相关的路径损耗之间的链路增益差异具有对数正态分布,可以实现非常接近真实阴影的衰减。我们提供了各种室内和室外实际场景的结果,以证明我们方法的普遍性。

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