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Distributed on-chip regulation: Theoretical stability foundation, over-design reduction and performance optimization

机译:分布式片上调节:理论稳定性基础,减少过度设计和性能优化

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While distributed on-chip voltage regulation offers an appealing solution to power delivery, designing power delivery networks (PDNs) with distributed on-chip voltage regulators with guaranteed stability is challenging because of the complex interactions between active regulators and the bulky passive network. The recently developed hybrid stability theory provides an efficient stability checking and design approach, giving rise to highly desirable localized design of PDNs. However, the inherent conservativeness of the hybrid stability criteria can lead to pessimism in stability evaluation and hence large over-design. We address this challenge by proposing an optimal frequency-dependent system partitioning technique to significantly reduce the amount of pessimism in stability analysis. With theoretical rigor, we show how to partition a PDN system by employing optimal frequency-dependent impedance splitting between the passive network and voltage regulators while maintaining the desired theoretical properties of the partitioned system blocks upon which the hybrid stability principle is anchored. We demonstrate a new stability-ensuring PDN design approach with the proposed over-design reduction technique using an automated optimization flow which significantly boosts regulation performance and power efficiency.
机译:尽管分布式片上稳压器提供了一种有吸引力的功率传输解决方案,但由于有源稳压器和庞大的无源网络之间的复杂相互作用,设计具有分布式片上稳压器并确保稳定性的功率传输网络(PDN)具有挑战性。最近开发的混合稳定性理论提供了一种有效的稳定性检查和设计方法,从而产生了非常理想的PDN局部设计。但是,混合稳定性标准的内在保守性可能导致稳定性评估过于悲观,从而导致过度设计。我们通过提出一种最佳的频率相关系统划分技术来显着减少稳定性分析中的悲观情绪,从而解决了这一挑战。通过严格的理论,我们展示了如何通过在无源网络和电压调节器之间采用最佳的频率相关的阻抗分配来划分PDN系统,同时保持锚定混合稳定性原理的已划分系统块的理想理论特性。我们通过使用自动优化流程的拟议的过度设计简化技术,演示了一种新的确保稳定性的PDN设计方法,该技术可显着提高调节性能和电源效率。

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