采样数据接收机中符号定时同步的环路控制体系结构

M. Rice, F. Harris
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引用次数: 13

摘要

符号时序同步是接收机从数字调制波形中恢复数据的重要组成部分。当前的趋势倾向于采样数据架构来执行恢复数据所需的同步、匹配过滤和检测。采样数据接收器中的符号定时同步器不同于它们的连续时间对应物:采样数据接收器中的功能是自适应插值器,而不是采样和保持。本文通过对比和比较三种使用数控振荡器的不同方法,探讨了可用于循环控制(即调整分数插值间隔)的体系结构。假设奈奎斯特采样率为N个样本/符号,第一种方法在MN个样本/符号下运行,其中M是上样本因子。第二种方法以N个样本/符号操作。结果表明,这两种方法都能自动补偿采样时钟和符号时钟频率之间的误差。第三种方法以1个样本/符号操作。在这种情况下,我们表明还必须包括辅助控制来调整进入滤波器组的数据时钟,以考虑样本时钟和数据时钟的微小差异。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Loop control architectures for symbol timing synchronization in sampled data receivers
Symbol timing synchronization is an important component in a receiver designed to recover data from a digitally modulated waveform. Current trends favor sampled data architectures to perform the synchronization, matched filtering, and detection required to recover the data. Symbol timing synchronizers in sampled data receivers differ from their continuous-time counterparts: the functionality in a sampled data receiver is as an adaptive interpolator as opposed to a sample and hold. This paper explores architectures that can be used for loop control (i.e. adjustment of the fractional interpolation interval) by contrasting and comparing three different methods using numerically controlled oscillators. Assuming the Nyquist sampling rate is N samples/symbol, the first method operates at MN samples/symbol where M is an upsample factor. The second method operates at N samples/symbol. It is shown that these two methods automatically compensate for misadjustments between the sample clock and symbol clock frequencies. The third method operates at 1 sample/symbol. In this case, we show that auxiliary control must also be included to adjust the clocking of data into the filter bank to account for small differences in the sample clock and the data clock.
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