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An Adaptive Phase Alignment Algorithm for Cartesian Feedback Loops

机译:笛卡尔反馈环的自适应相位对准算法

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摘要

An adaptive algorithm to correct phase misalignments in Cartesian feedback linearization loops for power amplifiers has been presented. It yields an error smaller than 0.035 rad between forward and feedback loop signals once convergence is reached. Because this algorithm enables a feedback system to process forward and feedback samples belonging to almost the same algorithm iteration, it is suitable to improve the performance not only of power amplifiers but also any other digital feedback system for communications systems and circuits such as all digital phase locked loops. Synchronizing forward and feedback paths of Cartesian feedback loops takes a small period of time after the system starts up. The phase alignment algorithm needs to converge before the feedback Cartesian loop can start its ideal behavior. However, once the steady state is reached, both paths can be considered synchronized, and the Cartesian feedback loop will only depend on the loop parameters (open-loop gain, loop bandwidth, etc.). It means that the linearization process will also depend only on these parameters since the misalignment effect disappears. Therefore, this algorithm relieves the power amplifier linearizer circuit design of any task required for solving phase misalignment effects inherent to Cartesian feedback systems. Furthermore, when a feedback Cartesian loop has to be designed, the designer can consider that forward and feedback paths are synchronized, since the phase alignment algorithm will do this task. This will reduce the simulation complexity. Then, all efforts are applied to determining the suitable loop parameters that will make the linearization process more efficient.
机译:提出了一种自适应算法来校正功率放大器的笛卡尔反馈线性化环路中的相位失准。一旦达到收敛,就会在正向和反馈环路信号之间产生小于0.035 rad的误差。因为此算法使反馈系统能够处理几乎相同算法迭代中的正向样本和反馈样本,所以它不仅适用于提高功率放大器的性能,而且还适用于改善通信系统和电路(例如全数字相位)的任何其他数字反馈系统的性能锁定循环。在系统启动后,同步笛卡尔反馈回路的正向和反馈路径会花费一小段时间。在反馈笛卡尔环可以开始其理想行为之前,相位收敛算法需要收敛。但是,一旦达到稳态,就可以认为两条路径都是同步的,并且笛卡尔反馈回路将仅取决于回路参数(开环增益,回路带宽等)。这意味着线性化过程也将仅取决于这些参数,因为失准效应消失了。因此,该算法可减轻功率放大器线性化器电路设计中解决笛卡尔反馈系统固有的相位失准效应所需的任何任务。此外,当必须设计反馈笛卡尔回路时,设计人员可以考虑使正向和反馈路径同步,因为相位对齐算法将完成此任务。这将降低仿真复杂度。然后,将所有努力应用于确定合适的环路参数,这将使线性化过程更有效。

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