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Electric Analog Circuit Design with Hypernetworks And A Differential Simulator

机译:具有HyperNetWorks和差分模拟器的电模拟电路设计

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The manual design of analog circuits is a tedious task of parameter tuning that requires hours of work by human experts. In this work, we make a significant step towards a fully automatic design method that is based on deep learning. The method selects the components and their configuration, as well as their numerical parameters. By contrast, the current literature methods are limited to the parameter fitting part only. A two-stage network is used, which first generates a chain of circuit components and then predicts their parameters. A hypernetwork scheme is used in which a weight generating network, which is conditioned on the circuit's power spectrum, produces the parameters of a primal RNN network that places the components. A differential simulator is used for refining the numerical values of the components. We show that our model provides an efficient design solution, and is superior to alternative solutions.
机译:模拟电路的手动设计是一项繁琐的参数调整任务,需要人类专家工作时间。 在这项工作中,我们对基于深度学习的全自动设计方法进行了重要一步。 该方法选择组件及其配置,以及它们的数值参数。 相比之下,目前的文献方法仅限于参数拟合部分。 使用两阶段网络,首先生成一系列电路组件,然后预测其参数。 使用高度可操作方案,其中在电路的功率谱上调节的权重生成网络产生放置组件的原始RNN网络的参数。 差分模拟器用于精制组件的数值。 我们表明我们的模型提供了高效的设计解决方案,优于替代解决方案。

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