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Random access for machine-to-machine communication in LTE-advanced networks: issues and approaches

机译:LTE先进网络中机器对机器通信的随机访问:问题和方法

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摘要

Machine-to-machine communication, a promising technology for the smart city concept, enables ubiquitous connectivity between one or more autonomous devices without or with minimal human interaction. M2M communication is the key technology to support data transfer among sensors and actuators to facilitate various smart city applications (e.g., smart metering, surveillance and security, infrastructure management, city automation, and eHealth). To support massive numbers of machine type communication (MTC) devices, one of the challenging issues is to provide an efficient way for multiple access in the network and to minimize network overload. In this article, we review the M2M communication techniques in Long Term Evolution- Advanced cellular networks and outline the major research issues. Also, we review the different random access overload control mechanisms to avoid congestion caused by random channel access of MTC devices. To this end, we propose a reinforcement learning-based eNB selection algorithm that allows the MTC devices to choose the eNBs (or base stations) to transmit packets in a self-organizing fashion.
机译:机器对机器通信是智慧城市概念的一项有前途的技术,它可以在一个或多个自主设备之间实现无处不在的连接,而无需或只需很少的人机交互。 M2M通信是支持传感器和执行器之间的数据传输以促进各种智能城市应用程序(例如,智能计量,监视和安全,基础设施管理,城市自动化和eHealth)的关键技术。为了支持大量的机器类型通信(MTC)设备,具有挑战性的问题之一是为网络中的多路访问提供一种有效的方法,并最大程度地减少网络过载。在本文中,我们回顾了长期演进高级蜂窝网络中的M2M通信技术,并概述了主要的研究问题。另外,我们回顾了不同的随机访问过载控制机制,以避免由MTC设备的随机信道访问引起的拥塞。为此,我们提出了一种基于增强学习的eNB选择算法,该算法允许MTC设备选择eNB(或基站)以自组织方式传输数据包。

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