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Joint Congestion Control and Resource Allocation for Massive MTC in 5G Networks Based on SCMA

机译:基于SCMA的5G网络中大规模MTC的联合拥塞控制和资源分配

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The massive Machine Type Communications (mMTC) usage scenario, also known as massive Internet of Things (mIoT), involves a large number of MTC devices having high requirements on increased battery lifetime, which autonomously transfer small amounts of data with relaxed delay requirements, without human intervention. The current cellular network is unsuitable for this scenario, due to the limited uplink resources allocated to the Physical Random Access Channel (PRACH) and to the Physical Uplink Shared Channel (PUSCH). With this in mind, in this paper we propose a new framework, customized for massive MTC services, that includes a joint control of the dynamic resource allocation between the PRACH and the PUSCH, and a new random access procedure based on an adaptive Access Class Barring (ACB) scheme that appropriately spreads random access re-attempts in time. In addition, to further increase the transmission efficiency, we adopt the Sparse Code Multiple Access (SCMA) technique for PUSCH resources, because SCMA results as the most promising Non-Orthogonal Multiple Access (NOMA) technique to support massive MTC connectivity with small-size data. Simulation results show that the proposed control framework significantly improves the number of succeeded communications and guarantees lower energy consumption in comparison with other proposals available in literature.
机译:大量机器类型通信(MMTC)使用场景,也称为大规模的物联网(MIOT),涉及大量对电池寿命增加的高要求的MTC设备,这自动转移少量数据,具有宽松的延迟要求,没有人为干预。由于分配给物理随机接入信道(PRACH)和物理上行链路共享信道(PUSCH)的有限上行链路资源,当前蜂窝网络不适用于这种情况。考虑到这一点,在本文中,我们提出了一种用于大规模MTC服务的新框架,包括联合控制PRACH和PUSCH之间的动态资源分配,以及基于自适应访问类禁止的新的随机访问过程(ACB)方案,适当地展开随机访问的时间重新尝试。此外,为了进一步提高传输效率,我们采用稀疏代码多址(SCMA)技术进行PUSCH资源,因为SCMA导致最有前途的非正交多通道(NOMA)技术,用于支持具有小尺寸的大量MTC连接数据。仿真结果表明,拟议的控制框架显着提高了成功通信的数量,并保证了与文献中可用的其他建议相比的能耗。

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