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首页> 外文期刊>IEEE Transactions on Computer-Aided Design of Integrated Circuits and Systems >Delivering global DC convergence for large mixed-signal circuits via homotopy/continuation methods
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Delivering global DC convergence for large mixed-signal circuits via homotopy/continuation methods

机译:通过同伦/连续方法为大型混合信号电路提供全局DC收敛

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Homotopy/continuation methods are attractive for finding dc operating points of circuits because they offer theoretical guarantees of global convergence. Existing homotopy approaches for circuits are, however, often ineffective for large mixed-signal applications. In this paper, we describe a robust homotopy technique that is effective for solving large metal-oxide-semiconductor (MOS)-based mixed-signal circuits. We demonstrate how certain common circuit structures involving turning-point nesting can lead to extreme inefficiency, or failure, of conventional probability-one homotopy methods. We also find that such situations can lead to numerical ill-conditioning and homotopy paths that fold back upon themselves, leading to algorithm failure. Our new homotopy model for MOS devices, dubbed Arc-tangent Schichman-Hodges (ATANSH), features decoupled continuation parameters that are instrumental in avoiding these problems. ATANSH-based homotopy methods in production use have led to the routine solution of large previously hard-to-solve industrial circuits, several examples of which are presented.
机译:同态/连续方法对于寻找电路的直流工作点很有吸引力,因为它们为全局收敛提供了理论上的保证。但是,现有的电路同伦方法对于大型混合信号应用通常无效。在本文中,我们描述了一种鲁棒的同伦技术,该技术可有效解决基于大型金属氧化物半导体(MOS)的混合信号电路。我们演示了某些涉及转折点嵌套的常见电路结构如何导致传统概率一同伦方法的极端低效或失败。我们还发现,这种情况可能导致数值不佳和同态路径向后折叠,从而导致算法失败。我们用于MOS器件的新同伦模型被称为反正切Schichman-Hodges(ATANSH),其特征在于解耦的连续参数有助于避免这些问题。在生产中使用基于ATANSH的同态方法导致了以前难以解决的大型工业电路的常规解决方案,其中提供了几个示例。

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