...
首页> 外文期刊>IEEE transactions on wireless communications >Quadratic forms in complex Gaussian matrices and performance analysis of MIMO systems with cochannel interference
【24h】

Quadratic forms in complex Gaussian matrices and performance analysis of MIMO systems with cochannel interference

机译:复杂高斯矩阵的二次形式和具有共信道干扰的MIMO系统的性能分析

获取原文
获取原文并翻译 | 示例
           

摘要

This paper establishes an analytical framework for the performance analysis of multiple-input/multiple output (MIMO) systems subject to cochannel interference and operating over fading channels. First, we present some new statistical results dealing with the distribution of the largest eigenvalue of certain quadratic forms in complex Gaussian matrices and establish the connection between these results and the performance analysis of MIMO systems subject to cochannel interference. We consider interference limited systems in which the number of cochannel interferers exceeds or is equal to the number of receiving antenna elements. We then derive new "closed-form" expressions of the probability density function of the outage signal-to-interference ratio and the system outage probability for MIMO systems in Rician-Rayleigh (i.e., the desired user is subject to Rician fading while cochannel interferers are subject to Rayleigh fading) and Rayleigh-Rayleigh fading environments. When applicable, these expressions are compared to special cases previously reported in the literature dealing with the performance of single-input/multiple-output (SIMO) systems. As a double check, these analytical results and assumptions are validated by Monte Carlo simulations and as an illustration of the mathematical formalism some numerical examples for particular cases of interests are plotted and discussed. These results show that under the same the scattering and interfering conditions and given a fixed number of total antenna elements and cochannel interferers: 1) SIMO systems will always outperform multiple-input/single-output systems and 2) it is preferable to distribute the number of antenna elements evenly between the transmitter and the receiver for an optimum performance.
机译:本文建立了一个用于分析多输入/多输出(MIMO)系统性能的分析框架,该系统受到同信道干扰并在衰落信道上运行。首先,我们提出了一些新的统计结果,这些结果涉及复杂高斯矩阵中某些二次形式的最大特征值的分布,并建立了这些结果与受同信道干扰的MIMO系统性能分析之间的联系。我们考虑干扰受限的系统,其中同信道干扰源的数量超过或等于接收天线元件的数量。然后,我们得出中断信号干扰比的概率密度函数和Rician-Rayleigh中MIMO系统的系统中断概率的新的“封闭形式”表达式(即,所需用户在同信道干扰时会受到Rician衰落的影响)受Rayleigh衰落)和Rayleigh-Rayleigh衰落环境的影响。在适用时,将这些表达式与以前在文献中报道的处理单输入/多输出(SIMO)系统性能的特殊情况进行比较。作为复核,这些分析结果和假设已通过蒙特卡洛模拟进行了验证,并且作为数学形式主义的例证,对某些特殊情况的数值示例进行了绘图和讨论。这些结果表明,在相同的散射和干扰条件下,并给定固定总数的天线元件和同信道干扰源:1)SIMO系统将始终胜过多输入/单输出系统; 2)最好分配数量在发射器和接收器之间均匀分布天线元件,以获得最佳性能。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号