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Performance Evaluation of SAGE Algorithm for Channel Estimation and Data Detection Using Superimposed Training in MIMO System

机译:MIMO系统中叠加训练的SAGE算法用于信道估计和数据检测的性能评估

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Recently, the superimposed pilot channel estimation has attracted attention for wireless communications, where the pilot symbol sequence is superimposed on a data symbol sequence and transmitted together, and thus there is no drop in information rate. In the superimposed pilot channel estimation, the receiver correlates the received symbol sequence with the pilot symbol sequence, and obtains the channel estimate. However, the correlation between the pilot symbol sequence and the data symbol sequence deteriorates the channel estimation accuracy. In particular, the channel estimation accuracy of the superimposed pilot channel estimation scheme is significantly deteriorated in MIMO systems, because the pilot symbol power of each transmit antenna to the total transmit power of all transmit antennas becomes smaller as the number of transmit antennas increases. On the other hand, it has been well known that the SAGE algorithm is an effective method for channel estimation and data detection. This algorithm is particularly effective in MIMO systems, because the operation of this algorithm can cancel the interference from other transmit antennas. In this paper, we evaluate the performance of the SAGE algorithm for channel estimation and data detection using superimposed pilot channel estimation in MIMO systems. From the results of computer simulations, we show that the system using the SAGE algorithm with superimposed training can achieve the good BER performances by using the SAGE algorithm with iteration.
机译:近来,叠加的导频信道估计已经引起了无线通信的关注,其中导频符号序列被叠加在数据符号序列上并一起发送,因此信息速率没有下降。在叠加的导频信道估计中,接收机将接收到的符号序列与导频符号序列相关,并获得信道估计。然而,导频符号序列与数据符号序列之间的相关性使信道估计精度恶化。特别地,由于随着发射天线数量的增加,每个发射天线的导频符号功率相对于所有发射天线的总发射功率变小,因此叠加导频信道估计方案的信道估计精度大大降低。另一方面,众所周知,SAGE算法是用于信道估计和数据检测的有效方法。该算法在MIMO系统中特别有效,因为该算法的操作可以消除来自其他发射天线的干扰。在本文中,我们使用MIMO系统中的叠加导频信道估计来评估SAGE算法用于信道估计和数据检测的性能。从计算机仿真结果可以看出,使用SAGE算法进行叠加训练的系统可以通过使用SAGE算法进行迭代来获得良好的BER性能。

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