Joint optimization of radio and computational resources for multicell mobile cloud computing

S. Sardellitti, G. Scutari, S. Barbarossa
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引用次数: 24

Abstract

We consider a MIMO multicell system wherein several Mobile Users (MUs) ask for computation offloading to a common cloud server through their femto-access points. We formulate the computation offloading problem as a joint optimization of the radio resources??the transmit precoding matrices of the MUs??and the computational resources??the CPU cycles/second assigned by the cloud to each MU??in order to minimize the overall users' energy consumption while meeting the latency constraints imposed by the applications running on the MUs. The resulting optimization problem is nonconvex (in the objective function and the constraints), and there are constraints coupling all the optimization variables. To cope with the nonconvexity, we hinge on successive convex approximation techniques and propose an iterative algorithm converging to a local optimal solution of the original nonconvex problem. The algorithm is also suitable for a parallel implementation across the access point, with limited coordination/signaling with the cloud. Numerical results show that the proposed joint optimization yields significant energy savings with respect to more traditional schemes performing a separate optimization of the radio and computational resources.
面向多单元移动云计算的无线电与计算资源联合优化
我们考虑一个MIMO多小区系统,其中几个移动用户(mu)要求通过他们的飞向接入点将计算卸载到一个公共云服务器。我们将计算卸载问题表述为无线电资源的联合优化问题。mu的发送预编码矩阵计算资源呢??云为每个MU分配的CPU周期/秒??以最大限度地减少用户的总体能耗,同时满足运行在mu上的应用程序所施加的延迟限制。所得到的优化问题是非凸的(在目标函数和约束中),并且存在耦合所有优化变量的约束。为了处理非凸性,我们依赖于连续凸逼近技术,并提出了一种收敛于原始非凸问题的局部最优解的迭代算法。该算法也适用于跨接入点的并行实现,与云的协调/信令有限。数值结果表明,相对于对无线电和计算资源进行单独优化的传统方案,所提出的联合优化产生了显著的节能效果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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