基于人工神经网络的功率约束跨层调度性能分析

A. Gyasi-Agyei
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引用次数: 0

摘要

由于希望利用协议交互来设计适合网络应用服务需求的最佳系统,跨层调度最近受到了强烈的关注。本文讨论了一种Lyapunov稳定的功率约束机会调度程序,该调度程序在保证对多流、多用户无线系统中所有活动流提供最小服务的同时,对无线频谱进行了最佳利用。我们将约束调度问题表述为一个动态微分方程组。在此基础上,建立了动态系统的Lyapunov函数,并应用Lyapunov稳定性理论证明了系统的收敛性。利用微分方程组来激励神经网络,神经网络的输出是约束优化问题的解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Performance Analysis of a Power-Constrained Cross-Layer Scheduling Using Artificial Neural Networks
Cross-layer scheduling has received an intense attention recently owing to the desire to exploit protocol interactions to design optimum systems that are adaptable to service requirements of network applications. This article discusses a Lyapunov stable power-constrained opportunistic scheduler that makes an optimum use of the wireless spectrum while guaranteeing a minimum service to all flows active in multi-flow, multiuser wireless systems. We formulate the constrained scheduling problem as a dynamic system of differential equations. We then establish a Lyapunov function for the dynamic system associated with the search for an optimum solution for the constrained convex optimization problem, and then apply Lyapunov stability theory to prove the system's convergence. The system of differential equations is used to excite a neural network whose outputs are the solutions to the constrained optimization problem.
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