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A Novel Measurement Based Method Enabling Rapid Extraction of Bayesian Inference-Based Behavioral Model

机译:一种基于新的测量方法,从而快速提取基于贝叶斯推断的行为模型

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摘要

In this paper, a novel model extraction method is proposed, which can extract behavioral model based on Bayesian inference accurately and efficiently. This method uses a simple active load-pull architecture, and only needs to change the amplitude and phase of the incident wave A2 at the load port in the process during the test, so that the training data can be acquired for the Bayesian algorithm, without the need for a complete loadpull test. Compared with the traditional scheme, this scheme can save the impedance iteration time and greatly improve the model extracting efficiency. The experiment results prove that the method has greatly increase the extracting speed without compromising the accuracy.
机译:本文提出了一种新型模型提取方法,可以准确且有效地提取基于贝叶斯推理的行为模型。该方法使用简单的主动负载拉动架构,只需要改变事件波的幅度和阶段 2 在测试期间的加载端口处,使训练数据可以用于贝叶斯算法,而无需完整的LoadPull测试。与传统方案相比,该方案可以节省阻抗迭代时间,大大提高模型提取效率。实验结果证明,该方法大大提高了提取速度而不会影响精度。

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