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Low complexity of computational cost of RF signal processing based diversity scheme for MIMO-OFDM systems

机译:基于MIMO-OFDM系统的基于RF信号处理的分集方案的计算成本的复杂度低

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It is is capable of doubling the capacity without expanding the occupied frequency bandwidth in Radio Frequency (RF) signal processing based diversity scheme for Multi-Input Multi-Output Orthogonal Frequency Division Multiplexing (MIMO-OFDM) systems using 2×2 dimension antenna. This technique is great because the additional diversity can be gained when the method of the linear MIMO decomposition is used. The resulting performance trends show a significant increase when it is compared to MIMO-OFDM schemes using conventional antenna for 2×2. But the complexity of computational cost is high, especially for the larger antenna size. For that reason the complexity of computation cost is proposed by applying technology of RF signal processing for MIMO-OFDM. So the technique, called Kalman filter MIMO equalizer is used to reduce low complexity of computational cost. In this technique the reduction of the matrix size of original channel matrix is made into 2×4 of matrix size for the number of sub-carrier. In additional part error correction coding technique is added by using convolution code techniques and viterbi algorithm applied at receiver side. Computer simulation result shows that the proposed scheme gives low complexity of computational cost and gives additional diversity gain.
机译:在使用2×2维天线的多输入多输出正交频分复用(MIMO-OFDM)系统的基于射频(RF)信号处理的分集方案中,它能够在不扩展占用带宽的情况下将容量加倍。该技术之所以出色,是因为使用线性MIMO分解方法时可以获得额外的分集。当与使用常规天线进行2×2的MIMO-OFDM方案相比时,所得到的性能趋势显示出显着提高。但是,计算成本的复杂度很高,尤其是对于较大的天线尺寸。因此,通过将RF信号处理技术应用于MIMO-OFDM,提出了计算成本的复杂性。因此,使用称为卡尔曼滤波器MIMO均衡器的技术来降低计算成本的低复杂性。在该技术中,针对子载波的数量,将原始信道矩阵的矩阵尺寸的减小设为矩阵尺寸的2×4。在另外的部分中,通过使用卷积码技术和在接收器侧应用的维特比算法,添加了纠错编码技术。计算机仿真结果表明,该方案具有较低的计算成本复杂度,并具有额外的分集增益。

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