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Effective Carrier Sensing in CSMA Networks under Cumulative Interference

机译:累积干扰下CSMA网络中的有效载波侦听

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This paper proposes the concept of safe carrier-sensing range under the cumulative interference model that guarantees interference-safe (also known as hidden-node-free) transmissions in CSMA networks. Compared with a previous related concept of safe carrier-sensing range under the commonly assumed but less realistic pairwise interference model, we show that the safe carrier-sensing range under the cumulative interference model is larger by a constant multiplicative factor. For example, the factor is 1.4 if the SINR requirement is $(10 dB)$ and the path-loss exponent is 4 in a noiseless case. We further show that the concept of a safe carrier-sensing range, although amenable to elegant analytical results, is inherently not compatible with the conventional power-threshold carrier-sensing mechanism (e.g., that used in IEEE 802.11). Specifically, the absolute power sensed by a node in the conventional carrier-sensing mechanism does not contain enough information for the node to derive its distances from other concurrent transmitting nodes. We show that, fortunately, a new carrier-sensing mechanism called Incremental-Power Carrier-Sensing (IPCS) can realize the carrier-sensing range concept in a simple way. Instead of monitoring the absolute detected power, the IPCS mechanism monitors every increment in the detected power. This means that IPCS can separate the detected power of every concurrent transmitter, and map the power profile to the required distance information. Our extensive simulation results indicate that IPCS can boost spatial reuse and network throughput by up to 60 percent relative to the conventional carrier-sensing mechanism under the same carrier-sensing power thresholds. If we compare the maximum throughput in the interference-free regime, the throughput improvement of IPCS is still more than 15 percent. Last but not least, IPCS not only allows us to implement the safe carrier-sensing range, but also ties up a loose end in many other prior theoretical - orks that implicitly used a carrier-sensing range (interference-safe or otherwise) without an explicit design to realize it.
机译:本文提出了在累积干扰模型下的安全载波侦听范围的概念,该模型可确保CSMA网络中的干扰安全(也称为无隐藏节点)传输。与通常假定但不太现实的成对干扰模型下的安全载波侦听范围的先前相关概念相比,我们表明累积干扰模型下的安全载波侦听范围比常数乘数大。例如,在无噪声情况下,如果SINR要求为$(10 dB)$,并且路径损耗指数为4,则系数为1.4。我们进一步表明,尽管可以接受优美的分析结果,但安全的载波检测范围的概念与传统的功率阈值载波检测机制(例如IEEE 802.11中使用的功率阈值)固有地不兼容。具体地,在常规载波感测机制中由节点感测的绝对功率没有包含足够的信息以使该节点能够从其他并发的发射节点导出其距离。我们证明,幸运的是,一种称为增量功率载波侦听(IPCS)的新型载波侦听机制可以简单地实现载波侦听范围概念。 IPCS机制不是监视绝对检测到的功率,而是监视检测到的功率的每个增量。这意味着IPCS可以分离每个并发发射机的检测到的功率,并将功率曲线映射到所需的距离信息。我们广泛的仿真结果表明,在相同的载波检测功率阈值下,相对于传统的载波检测机制,IPCS可以将空间复用和网络吞吐量提高多达60%。如果我们比较无干扰情况下的最大吞吐量,则IPCS的吞吐量提高仍然超过15%。最后但并非最不重要的一点是,IPCS不仅使我们能够实现安全的载波侦听范围,而且还捆绑了许多其他先前的理论中的一个松散的结局-隐含地使用载波侦听范围(干扰安全或其他方式)的组织明确的设计来实现它。

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