首页> 外文会议>Global Telecommunications Conference, 2009. GLOBECOM 2009 >Iterative Receiver Design with Joint Channel Estimation and Synchronization for Coded MIMO-OFDM over Doubly Selective Channels
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Iterative Receiver Design with Joint Channel Estimation and Synchronization for Coded MIMO-OFDM over Doubly Selective Channels

机译:双选择性信道上编码MIMO-OFDM联合信道估计和同步的迭代接收机设计

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The paper introduces a turbo (iterative) receiver design for joint channel estimation, synchronization and soft decoding in convolutional-coded multiple-input multiple-output (MIMO) orthogonal frequency division multiplexing (OFDM) systems over time- and frequency-selective (doubly selective) channels. Employing the complex-exponential basis expansion model (CE-BEM) for representing doubly selective channels, a maximum likelihood (ML) objective function of carrier frequency offset (CFO) and MIMO time-varying channel responses (BEM coefficients) is formulated to develop a semi-blind ML framework for joint time-variant channel estimation and synchronization. To reduce the overhead of pilot signals without sacrificing estimation accuracy, the soft bit information from a soft-input soft-output (SISO) decoder is exploited in computing soft estimates of data symbols to be functioned as pilots for further enhancing the estimation accuracy after CFO and channel acquisition phase (initial coarse estimation) using pilots. In other words, the resulting semi-blind ML estimation scheme operates in conjunction with soft decoding process in a (iteratively) progressive manner to exploit remarkable gains of turbo processing (iterative extrinsic information exchange). Simulation results show that the proposed turbo joint channel estimation and synchronization scheme offers high estimation accuracy that approaches Cramer-Rao lower bounds (CRLBs) over a wide range of CFO values under low signal-to-noise ratio (SNR) conditions.
机译:本文介绍了一种Turbo(迭代)接收机设计,用于在时间和频率选择(双重选择)上的卷积编码多输入多输出(MIMO)正交频分复用(OFDM)系统中的联合信道估计,同步和软解码)频道。利用复指数基础扩展模型(CE-BEM)来表示双选信道,制定了载波频率偏移(CFO)和MIMO时变信道响应(BEM系数)的最大似然(ML)目标函数,以开发出一个用于联合时变信道估计和同步的半盲ML框架。为了在不牺牲估计精度的情况下减少导频信号的开销,在计算数据符号的软估计时将利用来自软输入软输出(SISO)解码器的软比特信息作为导频,以进一步提高CFO后的估计精度和使用导频的信道获取阶段(初始粗略估计)。换句话说,所得到的半盲ML估计方案以(迭代)渐进方式与软解码过程结合工作,以利用Turbo处理(迭代外部信息交换)的显着收益。仿真结果表明,所提出的涡轮联合信道估计和同步方案在低信噪比(SNR)条件下,在很宽的CFO值范围内提供了接近Cramer-Rao下界(CRLB)的高估计精度。

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