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Distributed Probabilistic Offloading in Edge Computing for 6G-Enabled Massive Internet of Things

机译:以6G启用6G的大规模互联网的边缘计算分布式概率卸载

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摘要

Mobile-edge computing (MEC) is expected to provide reliable and low-latency computation offloading for massive Internet of Things (IoT) with the next generation networks, such as the sixth-generation (6G) network. However, the successful implementation of 6G depends on network densification, which brings new offloading challenges for edge computing, one of which is how to make offloading decisions facing densified servers considering both channel interference and queuing, which is an NP-hard problem. This article proposes a distributed-two-stage offloading (DTSO) strategy to give tradeoff solutions. In the first stage, by introducing the queuing theory and considering channel interference, a combinatorial optimization problem is formulated to calculate the offloading probability of each station. In the second stage, the original problem is converted to a nonlinear optimization problem, which is solved by a designed sequential quadratic programming (SQP) algorithm. To make an adjustable tradeoff between the latency and energy requirement among heterogeneous applications, an elasticity parameter is specially designed in DTSO. Simulation results show that compared to the latest works, DTSO can effectively reduce latency and energy consumption and achieve a balance between them based on application preferences.
机译:预计移动边缘计算(MEC)将为具有下一代网络(例如第六代(6G)网络)提供可靠和低延迟的计算卸载(IOT),例如第六代(6G)网络。然而,6G的成功实施取决于网络致密化,这为边缘计算带来了新的卸载挑战,其中一个是如何考虑频道干扰和排队的义务服务器面临卸载决策,这是一个NP难题。本文提出了分布式 - 两级卸载(DTSO)策略,以提供权衡解决方案。在第一阶段,通过引入排队理论并考虑信道干扰,配制了组合优化问题以计算每个站的卸载概率。在第二阶段,原始问题被转换为非线性优化问题,该问题由设计的顺序二次编程(SQP)算法解决。在异构应用中的延迟和能源需求之间进行可调节权衡,在DTSO中专门设计弹性参数。仿真结果表明,与最新作品相比,DTSO可以有效地降低延迟和能耗,并根据应用偏好实现它们之间的平衡。

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