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Récepteur itératif pour les systèmes MIMO-OFDM basé sur le décodage sphérique : convergence, performance et complexité

机译:基于球形解码的MIMO-OFDM系统的迭代接收机:收敛性,性能和复杂性

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摘要

Recently, iterative processing has been widely considered to achieve near-capacity performance and reliable high data rate transmission, for future wireless communication systems. However, such an iterative processing poses significant challenges for efficient receiver design. In this thesis, iterative receiver combining multiple-input multiple-output (MIMO) detection with channel decoding is investigated for high data rate transmission. The convergence, the performance and the computational complexity of the iterative receiver for MIMO-OFDM system are considered. First, we review the most relevant hard-output and soft-output MIMO detection algorithms based on sphere decoding, K-Best decoding, and interference cancellation. Consequently, a low-complexity K-best (LCK- Best) based decoder is proposed in order to substantially reduce the computational complexity without significant performance degradation. We then analyze the convergence behaviors of combining these detection algorithms with various forward error correction codes, namely LTE turbo decoder and LDPC decoder with the help of Extrinsic Information Transfer (EXIT) charts. Based on this analysis, a new scheduling order of the required inner and outer iterations is suggested. The performance of the proposed receiver is evaluated in various LTE channel environments, and compared with other MIMO detection schemes. Secondly, the computational complexity of the iterative receiver with different channel coding techniques is evaluated and compared for different modulation orders and coding rates. Simulation results show that our proposed approaches achieve near optimal performance but more importantly it can substantially reduce the computational complexity of the system. From a practical point of view, fixed-point representation is usually used in order to reduce the hardware costs in terms of area, power consumption and execution time. Therefore, we present efficient fixed point arithmetic of the proposed iterative receiver based on LC-KBest decoder. Additionally, the impact of the channel estimation on the system performance is studied. The proposed iterative receiver is tested in a real-time environment using the MIMO WARP platform.
机译:近来,对于未来的无线通信系统,迭代处理已被广泛考虑以实现接近容量的性能和可靠的高数据速率传输。然而,这样的迭代处理对有效的接收机设计提出了重大挑战。本文研究了将多输入多输出(MIMO)检测与信道解码相结合的迭代接收机,以实现高数据速率传输。考虑了MIMO-OFDM系统中迭代接收机的收敛性,性能和计算复杂性。首先,我们回顾基于球面解码,K-Best解码和干扰消除的最相关的硬输出和软输出MIMO检测算法。因此,提出了一种基于低复杂度的K-最佳(LCK-Best)的解码器,以便在不显着降低性能的情况下大幅降低计算复杂度。然后,我们借助外部信息传输(EXIT)图来分析将这些检测算法与各种前向纠错码(即LTE Turbo解码器和LDPC解码器)相结合的收敛行为。基于此分析,提出了所需的内部和外部迭代的新调度顺序。在各种LTE信道环境中评估提出的接收机的性能,并将其与其他MIMO检测方案进行比较。其次,针对不同的调制阶次和编码速率,评估并比较了采用不同信道编码技术的迭代接收机的计算复杂度。仿真结果表明,我们提出的方法可以达到接近最佳的性能,但更重要的是,它可以大大降低系统的计算复杂度。从实际的角度来看,通常使用定点表示法来减少面积,功耗和执行时间方面的硬件成本。因此,我们提出了一种基于LC-KBest解码器的迭代接收机的高效定点算法。此外,研究了信道估计对系统性能的影响。所提出的迭代接收机在使用MIMO WARP平台的实时环境中进行了测试。

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    el chall Rida;

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  • 年度 2015
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