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Blind estimation of output labels of SIMO channels based on a novel clustering algorithm

机译:基于新型聚类算法的SIMO通道输出标签盲估计

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This paper addresses the problem of data detection for digital communications employing space diversity reception, where the system model contains a single-input multiple-output (SIMO) vector channel. The received vector corrupted by additive white Gaussian noise (AWGN) is modeled as the noisy output of a finite state vector Markov source. Subsequently, a discretely valued basis of minimal dimensionality is identified for the input space. Estimation of the output labels associated with this basis allows labeling of the state transition diagram. For this purpose, certain identifiable characteristics of the output sequences of the Markov source are used to classify its states and generate an initial codebook for a vector quantizer used to restore the output level.
机译:本文解决了采用空间分集接收的数字通信数据检测问题,其中系统模型包含一个单输入多输出(SIMO)矢量通道。被加性高斯白噪声(AWGN)破坏的接收矢量被建模为有限状态矢量马尔可夫源的噪声输出。随后,为输入空间确定最小维的离散值基础。与该基础相关联的输出标签的估计允许状态转换图的标签。为此,使用马尔可夫信号源的输出序列的某些可识别特征对其状态进行分类,并为用于恢复输出电平的矢量量化器生成初始码本。

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