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Advanced receiver structures for mobile MIMO multicarrier communication systems

机译:用于移动MIMO多载波通信系统的高级接收器结构

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摘要

Beyond third generation (3G) and fourth generation (4G) wireless communication systems are targeting far higher data rates, spectral efficiency and mobility requirements than existing 3G networks. By using multiple antennas at the transmitter and the receiver, multiple-input multiple-output (MIMO) technology allows improving both the spectral efficiency (bits/s/Hz), the coverage, and link reliability of the system. Multicarrier modulation such as orthogonal frequency division multiplexing (OFDM) is a powerful technique to handle impairments specific to the wireless radio channel. The combination of multicarrier modulation together with MIMO signaling provides a feasible physical layer technology for future beyond 3G and fourth generation communication systems.The theoretical benefits of MIMO and multicarrier modulation may not be fully achieved because the wireless transmission channels are time and frequency selective. Also, high data rates call for a large bandwidth and high carrier frequencies. As a result, an important Doppler spread is likely to be experienced, leading to variations of the channel over very short period of time. At the same time, transceiver front-end imperfections, mobility and rich scattering environments cause frequency synchronization errors. Unlike their single-carrier counterparts, multi-carrier transmissions are extremely sensitive to carrier frequency offsets (CFO). Therefore, reliable channel estimation and frequency synchronization are necessary to obtain the benefits of MIMO OFDM in mobile systems. These two topics are the main research problems in this thesis.An algorithm for the joint estimation and tracking of channel and CFO parameters in MIMO OFDM is developed in this thesis. A specific state-space model is introduced for MIMO OFDM systems impaired by multiple carrier frequency offsets under time-frequency selective fading. In MIMO systems, multiple frequency offsets are justified by mobility, rich scattering environment and large angle spread, as well as potentially separate radio frequency - intermediate frequency chains. An extended Kalman filter stage tracks channel and CFO parameters. Tracking takes place in time domain, which ensures reduced computational complexity, robustness to estimation errors as well as low estimation variance in comparison to frequency domain processing.The thesis also addresses the problem of blind carrier frequency synchronization in OFDM. Blind techniques exploit statistical or structural properties of the OFDM modulation. Two novel approaches are proposed for blind fine CFO estimation. The first one aims at restoring the orthogonality of the OFDM transmission by exploiting the properties of the received signal covariance matrix. The second approach is a subspace algorithm exploiting the correlation of the channel frequency response among the subcarriers. Both methods achieve reliable estimation of the CFO regardless of multipath fading. The subspace algorithm needs extremely small sample support, which is a key feature in the face of time-selective channels. Finally, the Cramér-Rao (CRB) bound is established for the problem in order to assess the large sample performance of the proposed algorithms.
机译:除了第三代(3G)和第四代(4G),无线通信系统的目标是比现有3G网络更高的数据速率,频谱效率和移动性要求。通过在发射器和接收器处使用多个天线,多输入多输出(MIMO)技术可以提高频谱效率(bit / s / Hz),覆盖范围和系统的链路可靠性。诸如正交频分复用(OFDM)之类的多载波调制是一种强大的技术,可以处理特定于无线电信道的损害。多载波调制与MIMO信令的结合为3G和第四代通信系统以外的未来提供了可行的物理层技术。由于无线传输信道具有时间和频率选择性,因此MIMO和多载波调制的理论优势可能无法完全实现。而且,高数据速率要求大带宽和高载波频率。结果,很可能会经历重要的多普勒扩展,从而导致在非常短的时间内信道发生变化。同时,收发器前端的缺陷,移动性和丰富的散射环境也会导致频率同步错误。与单载波传输不同,多载波传输对载波频率偏移(CFO)极为敏感。因此,为了在移动系统中获得MIMO OFDM的好处,必须进行可靠的信道估计和频率同步。这两个问题是本文的主要研究问题。本文开发了一种用于MIMO OFDM的信道和CFO参数的联合估计和跟踪算法。针对时频选择性衰落下受多个载波频偏影响的MIMO OFDM系统,引入了一种特定的状态空间模型。在MIMO系统中,移动性,丰富的散射环境和大角度扩展以及可能分离的射频-中频链证明了多个频偏是合理的。扩展的卡尔曼滤波器级跟踪通道和CFO参数。跟踪是在时域进行的,与频域处理相比,可确保降低计算复杂度,估计误差的鲁棒性和较低的估计方差。本文还解决了OFDM中盲载波频率同步的问题。盲技术利用了OFDM调制的统计或结构特性。提出了两种新颖的方法用于盲目精细CFO估计。第一个目的是通过利用接收信号协方差矩阵的特性来恢复OFDM传输的正交性。第二种方法是利用子载波之间的信道频率响应的相关性的子空间算法。不管多径衰落如何,这两种方法都能实现CFO的可靠估计。子空间算法需要极小的样本支持,这是面对时间选择通道的关键功能。最后,针对该问题建立了Cramér-Rao(CRB)边界,以评估所提出算法的大样本性能。

著录项

  • 作者

    Roman Timo;

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  • 年度 2006
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  • 正文语种 en
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