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Channel Estimation for Multicarrier Multiple Input Single Output Systems Using the EM Algorithm

机译:基于EM算法的多载波多输入单输出系统的信道估计

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This paper investigates the problem of blindly and semi-blindly acquiring the channel gains for an underdetermined synchronous multiuser multicarrier system. The special case of a multiple-input single-output (MISO) channel is considered where the different users transmit at the same time and in the same bandwidth. In order to separate the different users blindly, techniques exploiting the finite alphabet are used. For such techniques, and for a general underdetermined MIMO system, we study conditions under which the channel and the data for each user are blindly and semi-blindly identifiable. We consider the stochastic maximum likelihood (SML) criterion in which the unknown input symbols are modeled as discrete random variables. We apply the expectation-maximization (EM) algorithm in the frequency domain to get blind and semi-blind channel estimates for each user in the MISO case. We also present a recursive EM solution that updates the channel and noise estimates at each time instant. Simulations show that users can be separated, even at low SNR. Furthermore, semi-blind estimation allows for a more robust estimation solution since a possible singularity problem is avoided.
机译:本文研究了不确定的同步多用户多载波系统中盲目和半盲目获取信道增益的问题。考虑了多输入单输出(MISO)通道的特殊情况,其中不同的用户同时以相同的带宽进行传输。为了盲目地分离不同的用户,使用了利用有限字母的技术。对于这样的技术,对于一般不确定的MIMO系统,我们研究了可以盲目和半盲地识别每个用户的信道和数据的条件。我们考虑随机最大似然(SML)准则,其中将未知输入符号建模为离散随机变量。我们在频域中应用期望最大化(EM)算法,以获取MISO情况下每个用户的盲和半盲信道估计。我们还提出了一种递归EM解决方案,该解决方案可以在每个时刻更新通道和噪声估计。仿真表明,即使信噪比较低,也可以将用户分开。此外,因为避免了可能的奇异性问题,所以半盲估计允许使用更鲁棒的估计解决方案。

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