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Distributed Adaptive Algorithms for Optimal Opportunistic Medium Access

机译:最优机会性媒体访问的分布式自适应算法

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摘要

We examine threshold-based transmission strategies for distributed opportunistic medium access in a scenario with fairly general probabilistic interference conditions. Specifically, collisions between concurrent transmissions are governed by arbitrary probabilities, allowing for a form of channel capture and covering binary interference constraints as an important special case. We address the problem of setting the threshold values so as to optimize the aggregate throughput utility of the various users, and particularly focus on a weighted logarithmic throughput utility function (Proportional Fairness). We provide an adaptive algorithm for finding the optimal threshold values in a distributed fashion, and rigorously establish the convergence of the proposed algorithm under mild statistical assumptions. Moreover, we discuss how the algorithm may be adapted to achieve packet-level stability with only limited exchange of queue length information among the various users. We also conduct extensive numerical experiments to corroborate the theoretical convergence results.
机译:在相当普遍的概率干扰条件下,我们研究了分布式机会介质访问的基于阈值的传输策略。具体来说,并发传输之间的冲突由任意概率控制,这是一种重要的特殊情况,允许使用一种形式的信道捕获并覆盖二进制干扰约束。我们解决了设置阈值的问题,以优化各个用户的总吞吐量效用,尤其关注加权对数吞吐量效用函数(比例公平性)。我们提供了一种自适应算法,用于以分布式方式查找最佳阈值,并在温和的统计假设下严格建立了所提出算法的收敛性。此外,我们讨论了如何在各种用户之间仅有限地交换队列长度信息的情况下,如何调整算法以实现数据包级的稳定性。我们还进行了广泛的数值实验,以证实理论上的收敛结果。

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