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Vectorless Estimation of Maximum Instantaneous Current for Sequential Circuits

机译:时序电路的最大瞬时电流的无矢量估计

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Large current in a chip can cause problems such as noise and power consumption. In this paper, a vectorless approach to analyzing a tight upper bound on the maximum instantaneous current (MIC) of a circuit is proposed. Several types of signal correlations that can cause the MIC estimation to lose accuracy are first described. Next, taking signal correlations into account, theorems to identify gates that switch mutually exclusively are proposed. In particular, the proposed algorithm can naturally consider signal correlations across sequential elements (flip-flops), whereas previous research on this topic addressed combinational circuits only. After deriving the information of mutually exclusive switching, a graph algorithm is applied to obtain an upper bound on the MIC. On average, the obtained sequential benchmark results are 179% tighter than those from the iMax algorithm and 66% tighter than those from the partial input enumeration algorithm
机译:芯片中的大电流会导致诸如噪声和功耗等问题。本文提出了一种无矢量方法来分析电路的最大瞬时电流(MIC)的严格上限。首先描述了几种可能导致MIC估计失去准确性的信号相关性。接下来,考虑到信号相关性,提出了确定互斥的门的定理。特别地,所提出的算法可以自然地考虑顺序元件(触发器)之间的信号相关性,而先前对此主题的研究仅针对组合电路。在得出互斥切换的信息之后,应用图算法来获得MIC的上限。平均而言,所获得的顺序基准测试结果比iMax算法的结果严格179%,比部分输入枚举算法的结果严格66%。

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