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Robust data rate estimation with stochastic SINR modeling in multi-interference OFDMA networks

机译:多干扰OFDMA网络中基于随机SINR建模的稳健数据速率估计

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To meet the rapidly growing requirement for universal coverage of high-speed mobile services, wireless cellular networks have been moving towards increasing density. Inter-cell cooperation in such densely deployed networks is becoming more significant than ever before. Among others, data rate estimation is a fundamental issue for inter-cell resource management and optimization. In this paper, we focus on the data rate estimation problem based on stochastic SINR models. We derive a closed-form solution of user SINR distribution in multi-interference networks. We calculate upper and lower bounds of the SINR distribution and extend them to a weighted sum SINR model to achieve more accurate estimation of data rate. The simulation results reveal that our designed model can guarantee the accuracy of data rate estimation in diverse wireless network environments such as urban and suburban scenarios. It decreases the error of estimation and the ratio of high-error users even with very small signaling overhead fed back per user. Various factors, such as the number of reported cells, low-SINR effect, propagation environments and inaccuracy of channel measurement, which influence the estimation performance are analyzed and evaluated as well. The weighted sum model is verified to have great resistance to the influence of these factors and achieve accurate estimation.
机译:为了满足对高速移动服务的普遍覆盖的快速增长的需求,无线蜂窝网络已经朝着密度增加的方向发展。在如此密集部署的网络中,小区间合作比以往任何时候都变得越来越重要。其中,数据速率估计是小区间资源管理和优化的基本问题。在本文中,我们重点研究基于随机SINR模型的数据速率估计问题。我们推导了多干扰网络中用户SINR分布的封闭式解决方案。我们计算SINR分布的上限和下限,并将它们扩展到加权和SINR模型,以实现更准确的数据速率估算。仿真结果表明,我们设计的模型可以保证在各种无线网络环境(例如城市和郊区)中数据速率估计的准确性。即使每个用户反馈的信令开销很小,它也可以减少估计错误和高错误用户的比例。还分析和评估了影响报告性能的各种因素,例如报告的小区数,低SINR效应,传播环境和信道测量的不准确性。验证了加权和模型对这些因素的影响具有很大的抵抗力,并实现了准确的估计。

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