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Selective Body Biasing for Post-Silicon Tuning of Sub-Threshold Designs: An Adaptive Filtering Approach

机译:亚阈值设计的硅后调整的选择性主体偏置:自适应滤波方法

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摘要

A sub-threshold design could provide a compelling approach to power critical applications. An exponential relationship exists, however, between the delay and the threshold voltage, that makes this design-time timing closure extremely difficult, if not impossible, to achieve. Several previous studies were focused on the technique of body biasing during post-silicon tuning for delay compensation. But they were mostly for super-threshold designs where spatially correlated variation dominates. They cannot be applied directly to sub-threshold designs in which purely random threshold voltage variations dominate. These works also assumed multiple body biasing voltage domains and multiple body biasing voltage levels, which involve significant design overhead. The problem of selective body biasing for post-silicon tuning of sub-threshold designs is examined in this paper. The possibility of using only one body bias voltage domain with a single body bias voltage is explored. The problem was formulated first as a linearly constrained statistical optimization model. The adaptive filtering concept from the signal processing community was then adopted so that an efficient, yet novel, solution could be developed. Using several 65 nm industrial designs, experimental results suggest that, compared with a seemingly more intuitive approach, the proposed approach can improve the pass rate by 57% on average with similar standby power and the same number of body biasing gates. This approach can reduce the standby power, on average, by 84%, with a 20% pass rate loss, more than the approach to bias all the gates.
机译:亚阈值设计可以为功率关键型应用提供引人注目的方法。但是,在延迟和阈值电压之间存在指数关系,这使得设计时间的时序收敛非常困难,即使不是不可能的。先前的一些研究集中在后硅调整期间的身体偏置技术上,以进行延迟补偿。但是它们主要用于空间相关变化占主导的超阈值设计。它们不能直接应用于纯随机阈值电压变化起主导作用的亚阈值设计。这些工作还假定了多个本体偏置电压域和多个本体偏置电压电平,这涉及大量的设计开销。本文研究了亚阈值设计的后硅调谐的选择性主体偏置问题。探索了仅使用一个本体偏置电压域和单个本体偏置电压的可能性。首先将问题表述为线性约束统计优化模型。然后,采用了信号处理社区的自适应滤波概念,从而可以开发出一种高效而新颖的解决方案。通过使用几种65 nm工业设计,实验结果表明,与看似更直观的方法相比,所提出的方法在相似的待机功率和相同数量的身体偏置栅极的情况下,平均可以将通过率提高57%。与偏置所有门的方法相比,这种方法平均可将待机功率降低84%,而通过率损失为20%。

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