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Efficient Random Access Channel Evaluation and Load Estimation in LTE-A With Massive MTC

机译:具有大规模MTC的LTE-A中高效的随机接入信道评估和负载估计

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The deployment of machine-type communications (MTC) together with cellular networks has a great potential to create the ubiquitous Internet-of-Things environment. Nevertheless, the simultaneous activation of a large number of MTC devices (named UEs herein) is a situation difficult to manage at the evolved Node B (eNB). The knowledge of the joint probability distribution function (PDF) of the number of successful and collided access requests within a random access opportunity (RAO) is a crucial piece of information for contriving congestion control schemes. A closed-form expression and an efficient recursion to obtain this joint PDF are derived in this paper. Furthermore, we exploit this PDF to design estimators of the number of contending UEs in an RAO. Our numerical results validate the effectiveness of our recursive formulation and show that its computational cost is considerably lower than that of other related approaches. In addition, our estimators can be used by the eNBs to implement highly efficient congestion control methods.
机译:机器类型通信(MTC)与蜂窝网络一起部署具有创建无所不在的物联网环境的巨大潜力。然而,大量MTC设备(在此称为UE)的同时激活是在演进的节点B(eNB)处难以管理的情况。随机访问机会(RAO)中成功和冲突访问请求的数量的联合概率分布函数(PDF)的知识是用于设计拥塞控制方案的重要信息。本文推导了一个闭合形式的表达式和有效的递归来获得这个联合PDF。此外,我们利用此PDF来设计RAO中竞争UE数量的估算器。我们的数值结果验证了递归公式的有效性,并表明其计算成本大大低于其他相关方法。另外,我们的估计器可以被eNB用于实现高效的拥塞控制方法。

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