In the upcoming sixth-generation (6G) era, the demand for constructing a wide-area time-sensitive Internet of Things (IoT) keeps increasing. As conventional cellular technologies are hard to be directly used for wide-area timesensitive IoT, it is beneficial to use non-terrestrial infrastructures including satellites and unmanned aerial vehicles (UAVs), where a non-terrestrial network (NTN) can be built under the cell-free architecture. Driven by the timesensitive requirements and uneven distribution of machines, the NTN is required to be empowered by mobile edge computing (MEC) while providing oasis-oriented on-demand coverage for machines. Nevertheless, communication and MEC systems are coupled with each other under the influence of complex propagation environment in the MECempowered NTN, which makes it hard to orchestrate the resources. In this paper, we propose a process-oriented framework to design the communication and MEC systems in a time-decoupled manner. Under this framework, the large-scale channel state information (CSI) is used to characterize the complex propagation environment with an affordable cost, where a non-convex task completion latency minimization problem is formulated. After that, the approximated dual problem is given and it can be decomposed into subproblems. These subproblems are further solved in an iterative way. Simulation results demonstrate the superiority of the proposed process-oriented scheme over other algorithms. These results also indicate that the payload deployments of UAVs should be appropriately predesigned to improve the efficiency of resource use. Furthermore, the results imply that it is advantageous to integrate NTN with MEC for wide-area time-sensitive IoT.
翻译:在即将到来的第六代(6G)时代,建设广域时间敏感物(IoT)互联网的需求不断增长。由于传统手机技术很难直接用于广域时间敏感 IoT,因此使用非地面基础设施,包括卫星和无人驾驶飞行器(UAVs)是有益的,因为非地面网络(NTN)可以在无细胞结构下建造。受时间敏感要求和机器分布不均驱动的驱动,NTN敏感度需要通过移动边缘计算(MEC)增强能力,同时为机器提供面向绿洲的点对价覆盖。然而,通信和MEC系统在MEC驱动的广域时间敏感 IoTNTN复杂传播环境的影响下相互配合,使得很难对资源进行调控。在本文件中,我们提议了一个以时间分解的方式设计非地面网络(NNTNTN)的面向进程的框架。在这个框架内,大规模整合频道状态信息(CSI)被用来以负担得起的时间传播环境为特点,同时提供面向用户的实时覆盖面覆盖面的覆盖面值。在成本之后,通信和MEC系统完成任务后,意味着双向性任务后将展示双向系统的问题。