Currently, the issues of the operation of the Internet of Things technology are being actively studied. The operation of a large number of different self-powered sensors is within the framework of a massive machine-type communications scenario using random access methods. Topical issues in this type of communication are: reducing the transmission signal power and increasing the duration of the device by reducing the consumption energy per bit. Formulation and analysis of the tasks of minimizing transmission power and spent energy per bit in systems without retransmissions and with retransmissions to obtain achievability bounds. A model of the system is described, within which four problems of minimizing signal power and energy consumption for given parameters (the number of information bits, the spectral efficiency of the system, and the Packet Delivery Ratio) are formulated and described. The numerical results of solving these optimization problems are presented, which make it possible to obtain the achievability bounds for the considered characteristics in systems with and without losses. The lower bounds obtained by the Shannon formula are presented, assuming that the message length is not limited. The results obtained showed that solving the minimization problem with respect to one of the parameters (signal power or consumption energy per bit) does not minimize the second parameter. This difference is most significant for small information message lengths, which corresponds to IoT scenarios. The results obtained allow assessing the potential for minimizing transmission signal power and consumption energy per bit in random multiple access systems with massive machine-type communications scenarios. The presented problems were solved without taking into account the average delay of message transmission.
翻译:目前,正在积极研究互联网“物”技术的操作问题,正在积极研究大量不同自动传感器的运行问题,该系统的运行是在使用随机访问方法的大规模机器型通信设想方案框架内进行的,这类通信的题目问题是:减少传输信号动力,通过减少每位消耗能源来延长装置的寿命;制定和分析在系统内不重复传输、不重复传输、不重复传输以尽可能减少传输电源和能源消耗的任务;描述一个系统模型,其中四个问题涉及将信号功率和能源消耗减少到特定参数(信息位数、系统光谱效率以及包装交付比率)的大规模通信设想方案;提出解决这些优化问题的数字结果,从而有可能在不重复传输和不亏损的情况下获得系统所考虑的特性的可感知性界限;提出香农公式的下限,假设电文长度不受限制;取得的结果显示,在不重复传输电量的情况下,在最小化通信参数(信号位位数、系统光谱效率)方面解决的第二个问题(在不重复的频率或耗耗耗量比例方面,这一模型不会导致最大的能量传输结果。