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Decomposite Channel Estimation and Equalization for GMSK-based System with Transmit Diversity

机译:基于GMSK的发射分集的复杂信道估计与均衡

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In this paper, multi-channel estimation schemes for a GMSK-based system with transmit diversity (space-time coding) are presented. For such a system, the channel information (impulse response) is critical for both space-time decoding and equalization at the receiver. Three non-blind estimation schemes, which decompose the channel in the process, are proposed for the GMSK receiver to obtain the impulse response of each of the multipath channels (i.e. transmit antennas): oversampling deconvolution, minimum mean-square error, and joint adaptive and correlation estimation. Since the received signal is the sum of emitted GMSK signals, interference cancellation is employed to facilitate the estimation process. Three cancellation algorithms, including direct cancellation, mean-square cancellation, and iterative cancellation, combined with each channel estimation method are investigated and compared. The estimated channel information will feed to the receiver consisting of space-time decoder and equalizer to decode the symbols of interest. Two receiver architectures are investigated in this paper, where the first design is the space-time decoder followed by the equalizer, the other is in the reverse way (equalizer followed by space-time decoder). In each of the two receiver architectures, the channel estimation needs additional modification and so does the equalizer. The equalizer in the design is a maximum likelihood sequence estimation (MLSE) based on Viterbi algorithm. To prove the concept and algorithms, both simulation and hardware implementation are performed. From the experimental results, it is shown that all the channel estimation algorithms can produce acceptable impulse response for space-time decoding and equalizer, in which the joint adaptive estimation with iterative cancellation is superior to the others. It is also shown that the diversity gain of this transmit diversity system is as good as a system with the same degree of receive diversity.
机译:本文介绍了具有发射分集(时空编码)的基于GMSK的系统的多通道估计方案。对于这样的系统,信道信息(脉冲响应)对于接收器处的时空解码和均衡至关重要。提出了三个非盲估计方案,其对该过程中的通道分解,用于GMSK接收器以获得每个多径信道的脉冲响应(即发射天线):过采样的折弯,最小均方误差和联合自适应和相关估计。由于接收信号是发射的GMSK信号的总和,因此采用干扰消除来促进估计过程。研究了三种消除算法,包括直接取消,平均取消和迭代取消,与每个信道估计方法相结合。估计的信道信息将馈送到由时空解码器和均衡器组成的接收器,以解码感兴趣的符号。在本文中研究了两个接收器架构,其中第一个设计是空时解码器,后跟均衡器,另一个是反向方式(均衡器后跟时空解码器)。在两个接收器架构中的每一个中,信道估计需要额外的修改,并且均衡器也是如此。设计中的均衡器是基于维特比算法的最大似然序列估计(MLSE)。为了证明概念和算法,执行仿真和硬件实现。从实验结果来看,示出所有信道估计算法都可以为时空解码和均衡器产生可接受的脉冲响应,其中迭代取消的联合自适应估计优于其他。还表明,该发射分集系统的分集增益与具有相同程度的接收分集的系统一样好。

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