The Metastable Behavior of a Schmitt-Trigger

A. Steininger, Jürgen Maier, Robert Najvirt
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引用次数: 7

Abstract

Schmitt-Trigger circuits are the method of choice for converting general signal shapes into clean, well-behaved digital ones. In this context these circuits are often used for metastability handling, as well. However, like any other positive feedback circuit, a Schmitt-Trigger can become metastable itself. Therefore, its own metastable behavior must be well understood, in particular the conditions that may cause its metastability. In this paper we will build on existing results from Marino to show that (a) a monotonic input signal can cause late transitions but never leads to a non-digital voltage at the Schmitt-Trigger output, and (b) a non-monotonic input can pin the Schmitt-Trigger output to a constant voltage at any desired (also non-digital) level for an arbitrary duration. In fact, the output can even be driven to any waveform within the dynamic limits of the system. We will base our analysis on a mathematical model of a Schmitt-Trigger's dynamic behavior and perform SPICE simulations to support our theory and confirm its validity for modern CMOS implementations. Furthermore, we will discuss several use cases of a Schmitt-Trigger in the light of our results.
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施密特触发器的亚稳态行为
施密特触发电路是将一般信号转换成干净、性能良好的数字信号的首选方法。在这种情况下,这些电路也经常用于亚稳态处理。然而,像任何其他正反馈电路一样,施密特触发器本身也会变成亚稳态。因此,必须很好地理解其自身的亚稳态行为,特别是可能导致其亚稳态的条件。在本文中,我们将以Marino的现有结果为基础,表明(a)单调输入信号可以导致延迟转换,但永远不会导致施密特触发器输出处的非数字电压,以及(b)非单调输入可以将施密特触发器输出引脚到任意持续时间的任意所需(也是非数字)电平的恒定电压。事实上,输出甚至可以驱动到系统的动态限制内的任何波形。我们将基于施密特触发器动态行为的数学模型进行分析,并进行SPICE模拟以支持我们的理论并确认其在现代CMOS实现中的有效性。此外,我们将根据我们的结果讨论施密特触发器的几个用例。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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