一种基于分层MDL的OFDM系统重要信道参数选择方法

A. El-Sallam, H. H. Dam, S. Nordholm
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摘要

研究了一种基于分层最小描述长度(MDL)的OFDM系统重要信道参数识别(分类)模型选择方法。与许多OFDM信道估计方法根据已知或估计的长度估计信道参数不同,本文不仅假设信道长度未知,而且使用本文提出的方法只会识别重要的信道参数。首先,提出了信道响应的模型。通过使用基于训练的场景,使用最小二乘(LS)或IFFT估计模型参数。基于这些估计,采用MDL模型选择方法估计信道长度,并对信道响应的每个重要参数进行分类。仿真结果表明,该方法能够以高概率对重要信道参数进行识别(分类)。此外,基于这些参数的接收机比基于全模型的接收机具有更好的性能
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A Hierarchial MDL Based Approach for the Selection of Significant Channel Parameters in OFDM Systems
The paper considers a hierarchial minimum description length (MDL) based model selection method for the identification (classification) of significant channel parameters in OFDM systems. Unlike many OFDM channel estimation methods, where the channel parameters are estimated based on a known or an estimated length, in this paper, not only the channel length is assumed to be unknown but also only significant channel parameters will be identified using the proposed method. Firstly, a model is proposed for the channel response. By using a training based scenario, the model parameters are estimated using least squares (LS) or IFFT. Based on those estimates, an MDL model selection method is used to estimate the channel length and classify each significant parameter of the channel response. Simulation results show that the method is capable of identifying (classifying) significant channel parameters with high probability. In addition a receiver based on those parameters have a better performance than the one which based on the full model
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