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Receiver Behavior Modeling based on System Identification

机译:基于系统识别的接收者行为建模

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In modern high-speed chip to chip SerDes (Serializer-Deserializer) links, the measured eye diagram at the receiver input is often closed. A receiver behavioral model is needed to predict the inner signal at the output of the receiver. In this paper, receiver modeling based on system identification approach is obtained. The advantage of this approach is that receiver system identification model can be performed only using the input and output time domain signals. In this research, model performances of linear and nonlinear system identification models are presented. System identification models are compared with Recurrent neural networks(RNN) and show better results.
机译:在现代高速芯片到芯片Serdes(Serializer-Deserializer)链路中,接收器输入的测量眼图通常关闭。需要接收器行为模型来预测接收器输出处的内信号。本文获得了基于系统识别方法的接收机建模。这种方法的优点是可以仅使用输入和输出时间域信号来执行接收器系统识别模型。在该研究中,提出了线性和非线性系统识别模型的模型性能。系统识别模型与经常性神经网络(RNN)进行比较,并显示出更好的结果。

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