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首页> 外文期刊>IEEE transactions on circuits and systems . I , Regular papers >Performance optimization of critical nets through active shielding
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Performance optimization of critical nets through active shielding

机译:通过主动屏蔽优化关键网络的性能

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摘要

We propose the concept of active shields-shields that switch concurrently with a signal wire of interest. Active shields aid signal transitions through the coupling between the signal wire and shields. For RC dominated wires, the active shields switch in the same phase as the signal wire since capacitive coupling is the dominant coupling mechanism. For wires with dominant inductive coupling, active shields switch in the opposite phase of the signal wire. We show that under fixed area and input capacitance constraints, in-phase active shielding outperforms traditional (passive) shielding and wire sizing/spacing techniques for minimizing delays and transition times on RC-dominated wires. For RLC wires, we demonstrate a region of feasibility (in terms of signal wire widths) for which opposite-phase active shielding outperforms the passive shielding technique. Opposite-phase active shielding suppresses ringing behavior to a greater degree than passive shields, providing similar performance to differential signaling while maintaining the simplicity of single ended signaling. The benefits of opposite-phase active shielding as compared to passive shielding are shown in the context of various clock net optimizations where reductions in ringing behavior (up to 4.5X) and transition times (up to 40% reduction) are achieved.
机译:我们提出了有源屏蔽的概念,即与感兴趣的信号线同时切换的屏蔽。有源屏蔽层通过信号线和屏蔽层之间的耦合来辅助信号转换。对于RC为主的导线,由于电容耦合是主要的耦合机制,因此有源屏蔽与信号线的相位相同。对于具有主要电感耦合的电线,有源屏蔽在信号线的相反相位切换。我们表明,在固定面积和输入电容约束下,同相有源屏蔽性能优于传统的(无源)屏蔽和导线定径/间隔技术,可最大程度地减少由RC主导的导线的延迟和过渡时间。对于RLC导线,我们展示了一个可行的区域(就信号导线的宽度而言),在该区域中,反相有源屏蔽优于无源屏蔽技术。与无源屏蔽相比,反相有源屏蔽在更大程度上抑制了振铃行为,在保持单端信令简单性的同时,提供了与差分信令相似的性能。相对于无源屏蔽而言,反相有源屏蔽的优势体现在各种时钟网络优化的背景下,在这些优化中,振铃行为(最多可降低4.5倍)和过渡时间(最多可降低40%)得以减少。

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