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Real-time tuning of cavity filters by learning from human experience: A vector field approach

机译:通过学习人类经验来实时调整腔体滤波器:矢量场方法

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The technique of tuning a cavity filter is purely a rule of thumb: only experienced tuning engineer is competent to the task. However, with the great development of the communication industry and the rapid increasing of production capacity, the need for tuning technicians becomes urgent. It is meaningful to replace this traditional manual tuning task with some more advanced and automatic methods. We hereby propose a real-time computer-aided tuning method based on the vector field approximating approach, which can be applied in robotic tuning systems in the near future. In this paper, we first make a literature review on some previous intelligent cavity filter tuning solutions. Then the method of employing vector fields to represent the change of S-parameters is proposed. We provide concrete procedures to drive the S-parameters curves to approximate towards the target. In the end, we give the experimental results which validate the flexibility of the method.
机译:调整腔体滤波器的技术纯粹是凭经验:只有经验丰富的调整工程师才能胜任这项工作。然而,随着通信行业的飞速发展和生产能力的迅速提高,对调音技术人员的需求变得迫在眉睫。用一些更高级和更自动的方法代替这种传统的手动调整任务是有意义的。我们在此提出一种基于矢量场近似方法的实时计算机辅助调谐方法,该方法可在不久的将来应用于机器人调谐系统中。在本文中,我们首先对一些以前的智能型腔滤波器调谐解决方案进行了文献综述。提出了用矢量场表示S参数变化的方法。我们提供了具体的程序来驱动S参数曲线逼近目标。最后,给出了实验结果,验证了该方法的灵活性。

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