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Prioritized Random MAC Optimization Via Graph-Based Analysis

机译:通过基于图的分析优先进行随机MAC优化

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摘要

Motivated by the analogy between successive interference cancellation and iterative belief-propagation on erasure channels, irregular repetition slotted ALOHA (IRSA) strategies have received a lot of attention in the design of medium access control protocols. In this work, we consider generic systems where sources in different importance classes compete for a common channel. We propose a new IRSA algorithm and derive the probability to correctly resolve collisions for data from each source class. We then make use of our theoretical analysis to formulate a new optimization problem for selecting the transmission strategies of heterogenous sources. We optimize both the replication probability per class and the source rate per class, in such a way that the overall system utility is maximized. We then propose a heuristic-based algorithm for the selection of the transmission strategy, which is built on intrinsic characteristics of the iterative decoding methods adopted for recovering from collisions. Experimental results validate the accuracy of the theoretical study and show the gain of well-chosen prioritized transmission strategies for transmission of data from heterogenous classes over shared wireless channels.
机译:由于连续干扰消除与擦除信道上的迭代置信传播之间的类比,不规则重复时隙ALOHA(IRSA)策略在媒体访问控制协议的设计中受到了广泛的关注。在这项工作中,我们考虑了通用系统,其中不同重要性级别的源争用一个公共渠道。我们提出了一种新的IRSA算法,并得出了正确解决来自每个源类的数据冲突的可能性。然后,我们利用理论分析来制定一个新的优化问题,以选择异构源的传输策略。我们以使整个系统效用最大化的方式,优化了每个类别的复制概率和每个类别的源速率。然后,我们提出了一种基于启发式的传输策略选择算法,该算法建立在用于从冲突中恢复的迭代解码方法的内在特征上。实验结果验证了理论研究的准确性,并显示了通过共享无线信道从异构类传输数据的精心选择的优先传输策略的收益。

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