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Enhanced cooperative access class barring and traffic adaptive radio resource management for M2M communications over LTE-A

机译:LTE-A上用于M2M通信的增强型协作访问类别限制和流量自适应无线资源管理

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We propose enhanced cooperative access class barring (ECACB) and traffic adaptive radio resource management (TARRM) for M2M communications over LTE-A. We use the number of Machine-Type Communication (MTC) devices that attach to an eNB, which is the base station of LTE-A, as a criterion to determine the probability that an MTC device may access the eNB. In this way, we can have a better set of access class barring parameters than CACB, which is the best available related work, so as to reduce random access delay experienced by an MTC device or user equipment (UE). After an MTC device successfully accesses an eNB, the eNB allocates radio resources for the MTC device based on the random access rate of the MTC device and the amount of data uploaded or downloaded by the MTC device. In addition, we use the concept from cognitive radio networks that when there are unused physical resource blocks (PRBs) of UEs, the eNB can schedule MTC devices to use these PRBs to enhance network throughput. Simulation results show that the proposed ECACB's average (worst) access delay of UEs is 33.19% (29.89%) lower than CACB's. Its average (worst) access delay of MTC devices is 12.15% (15.1%) lower than that of CACB. Its average (worst) throughput from UEs is 20.93% (26.44%) higher than that of CACB. Its average (worst) throughput from MTC devices is 19.95% (12.25%) higher than that of CACB. The proposed ECACB+TARRM's average (worst) throughput from UEs is 26.16% (31.42%) higher than CACB's. Its average (worst) throughput from MTC devices is 25.11% (20.76%) higher than that of CACB. To the best of our knowledge, no existing approach integrates access class barring with radio resource management for M2M communications over LTE-A.
机译:我们提出了针对LTE-A上的M2M通信的增强型协作访问类别限制(ECACB)和流量自适应无线资源管理(TARRM)。我们使用连接到作为LTE-A基站的eNB的机器类型通信(MTC)设备的数量作为确定MTC设备可以访问eNB的概率的标准。这样,我们可以拥有比CACB更好的一组访问等级限制参数,这是可获得的最佳相关工作,从而减少了MTC设备或用户设备(UE)遇到的随机访问延迟。 MTC设备成功接入eNB后,eNB根据MTC设备的随机接入速率以及MTC设备上载或下载的数据量,为MTC设备分配无线资源。另外,我们使用来自认知无线电网络的概念,即当存在未使用的UE物理资源块(PRB)时,eNB可以调度MTC设备使用这些PRB来增强网络吞吐量。仿真结果表明,提出的ECACB的UE平均(最坏)接入延迟比CACB的平均延迟低33.19%(29.89%)。 MTC设备的平均(最差)访问延迟比CACB的访问延迟低12.15%(15.1%)。 UE的平均(最差)吞吐量比CACB高20.93%(26.44%)。它从MTC设备获得的平均(最差)吞吐量比CACB高19.95%(12.25%)。提议的ECACB + TARRM从UE的平均(最坏)吞吐量比CACB高26.16%(31.42%)。它从MTC设备获得的平均(最差)吞吐量比CACB高25.11%(20.76%)。据我们所知,尚无现有方法将接入类别限制与用于LTE-A上的M2M通信的无线电资源管理集成在一起。

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