Optimal SINR-based Random Access

Hamed Mohsenian Rad, V. Wong, R. Schober
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引用次数: 18

Abstract

Random access protocols, such as Aloha, are commonly modeled in wireless ad-hoc networks by using the protocol model. However, it is well-known that the protocol model is not accurate and particularly it cannot account for aggregate interference from multiple interference sources. In this paper, we use the more accurate physical model, which is based on the signal-to-interference-plus-noise-ratio (SINR), to study optimization-based design in wireless random access systems, where the optimization variables are the transmission probabilities of the users. We focus on throughput maximization, fair resource allocation, and network utility maximization, and show that they entail non-convex optimization problems if the physical model is adopted. We propose two schemes to solve these problems. The first design is centralized and leads to the global optimal solution using a sum-of-squares technique. However, due to its complexity, this approach is only applicable to small-scale networks. The second design is distributed and leads to a close-to-optimal solution using the coordinate ascent method. This approach is applicable to medium-size and large-scale networks. Based on various simulations, we show that it is highly preferable to use the physical model for optimization-based random access design. In this regard, even a sub-optimal design based on the physical model can achieve a significantly better performance than an optimal design based on the inaccurate protocol model.
基于最优sinr的随机存取
随机访问协议(如Aloha)通常在无线自组织网络中使用协议模型进行建模。然而,众所周知,协议模型并不准确,特别是它不能考虑来自多个干扰源的聚合干扰。本文采用基于信噪比(SINR)的更精确的物理模型来研究无线随机接入系统的优化设计,其中优化变量为用户的传输概率。我们关注吞吐量最大化、公平资源分配和网络效用最大化,并表明如果采用物理模型,它们会导致非凸优化问题。我们提出两个方案来解决这些问题。第一种设计是集中式的,使用平方和技术得到全局最优解。但由于其复杂性,该方法仅适用于小规模网络。第二种设计是分布式的,采用坐标上升法得到接近最优解。该方法适用于大中型网络。基于各种仿真,我们证明了在基于优化的随机访问设计中使用物理模型是非常可取的。在这方面,即使是基于物理模型的次优设计也能比基于不准确的协议模型的最优设计获得更好的性能。
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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