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An Approach for Low Power Design of Power Gated Finite State Machines Considering Partitioning and State Encoding Together

机译:兼顾分区和状态编码的功率门控有限状态机低功耗设计方法

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摘要

Partitioning is an effective method for synthesis of low power finite state machines (FSM). To make the partitioning more effective power gating can be applied to turn OFF the inactive subFSM. During transition from the states of one subFSM to the states of other subFSM, the supply voltage is required to be turned OFF for one subFSM and turned ON for other subFSM. This adjustment of supply voltage needs some amount of time, called wakeup time which affects the partitioning of FSMs for its power gated implementation as both the subFSMs are ON during this time. In this paper we have considered this issue by developing a new probabilistic power model of the power-gated design of FSM and finding the boundary depth. As effective partitioning and encoding of FSM decides the power consumption of final power gating implementation, in this paper Genetic Algorithm (GA) has been used to solve this integrated problem of both bi-partitioning and encoding. Experimental results obtained show the effectiveness of the approach in terms of total dynamic power consumption, compared to the technique reported in the literature. Power has been estimated at 45 nm technology and variation of power consumption for different boundary depth has been shown. Affects of the size of sleep transistor and subFSM on the boundary depth have also been studied. Power gated area, reported in this paper is not so high.
机译:分区是综合低功耗有限状态机(FSM)的有效方法。为了使分区更有效,可以应用电源门控以关闭非活动subFSM。在从一个子FSM的状态转换到另一子FSM的状态期间,需要为一个子FSM关断电源电压,并为另一子FSM接通电源。电源电压的这种调整需要一定的时间,称为唤醒时间,这会影响FSM对其电源门控实施的划分,因为这两个subFSM在此期间均处于ON状态。在本文中,我们通过开发FSM功率门控设计的新概率功率模型并找到边界深度来考虑此问题。由于FSM的有效分区和编码决定了最终功率门控实施方案的功耗,因此本文采用遗传算法(GA)解决了双向划分和编码的集成问题。与文献报道的技术相比,获得的实验结果表明该方法在总动态功耗方面是有效的。估计功率为45 nm,并且显示了不同边界深度的功耗变化。还研究了睡眠晶体管和subFSM的尺寸对边界深度的影响。本文报道的功率门控面积不是很高。

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