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首页> 外文期刊>IEEE Transactions on Computer-Aided Design of Integrated Circuits and Systems >Cycle-Based Decomposition of Markov Chains With Applications to Low-Power Synthesis and Sequence Compaction for Finite State Machines
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Cycle-Based Decomposition of Markov Chains With Applications to Low-Power Synthesis and Sequence Compaction for Finite State Machines

机译:马尔可夫链的基于周期的分解及其在有限状态机的低功率合成和序列压缩中的应用

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This paper advances the state of the art by presenting a well-founded mathematical framework for modeling and manipulating Markov processes. The key idea is based on the fact that a Markov process can be decomposed into a collection of directed cycles with positive weights, which are proportional to the probability of the cycle traversals in a random walk. Two applications of this new formalism in the computer-aided design area are studied. In the first application, the authors present a new state assignment technique to reduce dynamic power consumption in finite state machines. The technique comprises of first decomposing the state machine into a set of cycles and then performing a state assignment by using Gray codes. The proposed encoding algorithm reduces power consumption by an average of 15%. The second application is sequence compaction for improving the efficiency of dynamic power simulators. The proposed method is based on the cycle decomposition of the Markov process representing the given input sequence and then selecting a subset of these cycles to construct the compacted sequence
机译:本文通过提供一个用于建模和操纵马尔可夫过程的完善的数学框架,来提高技术水平。关键思想基于以下事实:可以将马尔可夫过程分解为具有正权重的有向循环的集合,该权重与随机游走中循环遍历的概率成比例。研究了这种新形式主义在计算机辅助设计领域中的两个应用。在第一个应用中,作者提出了一种新的状态分配技术,以减少有限状态机中的动态功耗。该技术包括首先将状态机分解为一组循环,然后使用格雷码执行状态分配。所提出的编码算法将功耗平均降低了15%。第二个应用是序列压缩,以提高动态功率模拟器的效率。所提出的方法是基于代表给定输入序列的马尔可夫过程的循环分解,然后选择这些循环的子集来构造压缩序列

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