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首页> 外文期刊>Journal of Low Power Electronics >State Space Reconfigurability: A Low Energy Implementation Architecture for Self Modifying Finite Automata
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State Space Reconfigurability: A Low Energy Implementation Architecture for Self Modifying Finite Automata

机译:状态空间可重构性:一种用于自我修改有限自动机的低能耗实现架构

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Many embedded systems contain state-space disjoint behavior slices with mutually exclusive schedule. When such behaviors are captured by state machines, the current design flow will capture it as a union of all the behavior slices. A traditional state assignment followed by logic synthesis on disjoint behavior slice state sets results in high area and energy costs. Such implementation's costs are proportional to the union of all the behavior slices (in area, energy and delay). We propose to use self-modifying finite automata (SMFA), that have been studied from complexity-theoretic perspective, for expressing and implementing such adaptive behaviors in embedded systems. Towards this end, we present an implementation architecture for SMFAs. We present five adaptive behaviors captured by SMFA to illustrate the expressivity of this formalism. We also compare the area, time and energy costs of several SMFA implementations with the classical logic space (FSM) implementations for some randomly generated state machines. The key contributions of the paper are in exploring the expressibility of self-modifying FA paradigm in realistic embedded systems, and in proposing and evaluating an implementation architecture for SMFAs.
机译:许多嵌入式系统包含状态空间不相交的行为片和相互排斥的时间表。当状态机捕获此类行为时,当前的设计流程会将其捕获为所有行为切片的并集。传统的状态分配,然后对不相交的行为切片状态集进行逻辑综合,会导致较高的面积和能源成本。这种实现的成本与所有行为切片的并集(面积,能耗和延迟)成正比。我们建议使用已经从复杂性理论的角度研究的自修改有限自动机(SMFA)在嵌入式系统中表达和实现这种自适应行为。为此,我们提出了SMFA的实现架构。我们介绍了SMFA捕获的五种适应性行为,以说明这种形式主义的表现力。我们还将几种SMFA实现与一些随机生成的状态机的经典逻辑空间(FSM)实现进行了面积,时间和能源成本的比较。本文的主要贡献在于探索自我修改FA范例在现实嵌入式系统中的可表达性,以及提出和评估SMFA的实现架构。

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