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A Probabilistic Approach to Model SIC Based RACH Mechanism for Machine Type Communications in Cellular Networks

机译:基于SiC基于SiC的RACH机制的概率方法,用于蜂窝网络中的机器类型通信

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摘要

In cellular Internet of Things, burst transmissions from millions of machine type communications (MTC) devices can result in channel congestion. The main bottleneck in such scenario is the inefficient random access channel (RACH) mechanism that is used to attach MTC devices to a base station (BS). To address this issue of congestion in RACH mechanism, 3GPP has proposed an extended access barring (3GPP-EAB) mechanism. However, several works indicate that the performance of the 3GPP-EAB mechanism can be further improved. In this work, a successive interference cancellation (SIC) based RACH mechanism is considered to significantly increase the RACH success rate and reduce congestion. In the proposed mechanism, the devices are allowed to transmit repeatedly for a finite number of times in a given radio frame, and thereafter, the success rate is improved by applying back-and-forth SIC at the BS. A Markov model of the proposed mechanism is presented with all transition and steady-state probabilities. Further, the probability of successful SIC for a given state of the Markov chain is derived. Through extensive numerical results, it is shown that the proposed mechanism significantly outperforms the state-of-the-art mechanisms in terms of the success rate and average access delay. Moreover, to maximize the success rate, the optimum number of devices to be entered in a radio frame is also calculated. Finally, we investigate the effect of imperfect SIC, increasing number of contending devices on the performance of the proposed mechanism.
机译:在蜂窝内容互联网上,来自数百万台机器类型通信(MTC)设备的突发传输可能导致信道拥塞。这种情况下的主要瓶颈是用于将MTC设备连接到基站(BS)的低效随机接入信道(RACH)机制。为了解决RACH机制中拥塞问题,3GPP提出了扩展访问限制(3GPP-EAB)机制。然而,有几种作品表明,可以进一步提高3GPP-EAB机制的性能。在这项工作中,考虑了一种连续的干扰消除(SIC)的RACH机制,显着增加了RACH成功率并减少了拥塞。在所提出的机制中,允许器件在给定的无线电帧中重复发送有限次数,此后,通过在BS处施加后退SiC来改善成功率。所提出机构的马尔可夫模型具有所有转换和稳态概率。此外,推导出Markov链的给定状态的成功SiC的概率。通过广泛的数值结果,表明该提出的机制在成功率和平均访问延迟方面显着优于最先进的机制。此外,为了最大化成功率,还计算了在无线电帧中输入的最佳数量。最后,我们研究了不完美SIC,越来越多的竞争装置对所提出的机制的性能的影响。

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