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Optimizing Training Lengths and Training Intervals in Time-Varying Fading Channels

机译:在随时间变化的衰落通道中优化训练长度和训练间隔

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摘要

In time-varying faded channels the transmissions are organized into frames where the channel estimation is mainly training-based. The optimal design of the training structure is formulated here by finding the training length (the optimal number of contiguous pilots) and the training interval (the interval among two successive training phases) to maximize system throughput. The optimal balance of training and payload depends on the combination of Doppler frequency and frame length. The level of the signal to noise ratio and the fading dynamics constrain the quality of the estimate from training. It is shown that the length of the training can be conveniently traded for lower training intervals to reduce the estimate out-dating. For fast-varying fading and for high enough signal to noise ratio, there is a definite advantage in fragmenting the frame with dispersed segments of training symbols of smaller length rather than having a highly reliable channel estimate by concentrating all the training symbols at the beginning of the frame. Extensive simulations corroborate the design criteria. System throughput is maximized either for noisy binary transmission and for Gaussian input symbol distribution (i.e., by using information theoretic analysis).
机译:在时变衰落的信道中,传输被组织成帧,其中信道估计主要基于训练。通过求出训练长度(连续飞行员的最佳数量)和训练间隔(两个连续训练阶段之间的间隔),来最大化系统吞吐量,从而制定训练结构的最优设计。训练和有效载荷的最佳平衡取决于多普勒频率和帧长度的组合。信噪比的水平和衰落的动态限制了训练的估计质量。结果表明,可以方便地将训练的长度换成较低的训练间隔,以减少估计的过时。对于快速变化的衰落和足够高的信噪比,使用较小长度的分散训练符号段来分割帧具有明显的优势,而不是通过将所有训练符号集中在帧的开头来获得高度可靠的信道估计。大量的仿真证实了设计标准。对于嘈杂的二进制传输和高斯输入符号分布(即,通过使用信息理论分析),系统吞吐量最大化。

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