PiSPICE: Accelerating Post-Layout SPICE Simulation via Essential Parasitic Identification
Zhou Jin, Jing Li, Jian Xin, Tianjia Zhou, Xiao Wu, Dan Niu, Zuochang Ye
Abstract
As process nodes scale to more advanced technologies, post-layout simulations for integrated circuits have become increasingly complex, involving billions to trillions of nodes. The growing design complexity and transistor integration require more accurate and efficient post-layout SPICE simulations. However, existing methods for solving large-scale post-layout circuits face significant challenges due to high computational costs. In this paper, we propose a new approach, PiSPICE, which utilizes adjoint sensitivity analysis to identify critical parasitics and eliminate non-critical ones, effectively reducing the simulation scale and improving speed. By modeling parasitics and performing sensitivity analysis on pre-layout circuits, we significantly reduce the computational burden and avoid the overhead of directly analyzing sensitivities in large-scale postlayout circuits. By retaining only the critical parasitics and applying model order reduction to minimize their impact, while eliminating non-critical parasitics, PiSPICE achieves a speedup of up to 17.27 x in simulation with an error margin of less than 0.78% compared to the commercial simulator Spectre.
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