一种抽象引导状态判定的蚁群优化技术

Min Li, M. Hsiao
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引用次数: 17

摘要

提出了一种基于蚁群算法的抽象引导状态判定启发式算法。建立了一个概率状态转移模型,将状态证明问题表述为人工蚂蚁的搜索方案。蚂蚁留下的信息素的数量与搜索的质量成正比,可以有效地指导搜索。此外,基于集体行为的智能能够避免临界死角状态,并能够快速收敛到目标状态。实验结果表明,与其他方法相比,我们的方法在时序电路中达到难以达到的状态方面具有优势。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
An ant colony optimization technique for abstraction-guided state justification
In this paper, a novel heuristic for abstraction-guided state justification is proposed based on ant colony optimization (ACO). A probabilistic state transition model is developed to help formulate the state justification problem as a searching scheme of artificial ants. The amount of pheromone left by the ants is directly proportional to the quality of the search so that it can serve as an effective guidance for the search. In addition, the intelligence based on the collective behavior is capable of avoiding critical dead-end states as well as fast convergence to the target state. Experimental results demonstrated that our approach is superior in reaching hard-to-reach states in sequential circuit compared to other methods.
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