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A New Memetic Algorithm With Fitness Approximation for the Defect-Tolerant Logic Mapping in Crossbar-Based Nanoarchitectures

机译:基于交叉开关的纳米体系结构中具有适应度近似的新模因算法用于容错逻辑映射

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摘要

The defect-tolerant logic mapping (DTLM), which has been proved to be an NP-complete combinatorial search problem, is a key step for logic implementation in emerging crossbar-based nano-architectures. However, no practically satisfactory solution has been suggested for the DTLM until now. In this paper, the problem of DTLM is first modeled as a combinatorial optimization problem through the introduction of maximum-bipartite-matching. Then, a new memetic algorithm with fitness approximation (MA/FA) is proposed to solve the optimization problem efficiently. In MA/FA, a new greedy reassignment local search operator, capable of utilizing the domain knowledge and information from problem instances, is designed to help the algorithm find optimal logic mapping with consumption of relatively lower computational resources. A fitness approximation method is adopted to reduce the time consumption of fitness evaluation dramatically. In addition, a hybrid fitness evaluation strategy that combines the exact and approximated fitness evaluation methods is presented to balance the accuracy and time efficiency of fitness evaluation. The effectiveness and efficiency of the proposed methods are testified and evaluated on a large set of benchmark instances of various scales, and the advantage of MA/FA on keeping good balance between effectiveness and efficiency is also observed.
机译:容错逻辑映射(DTLM)已被证明是NP完全组合搜索问题,是新兴的基于交叉开关的纳米架构中逻辑实现的关键步骤。但是,到目前为止,尚未提出针对DTLM的实际令人满意的解决方案。在本文中,首先通过引入最大二分匹配将DTLM问题建模为组合优化问题。然后,提出了一种新的具有适应度近似的模因算法(MA / FA),以有效地解决优化问题。在MA / FA中,设计了一种新的贪婪重新分配本地搜索运算符,该运算符能够利用问题实例中的领域知识和信息,以帮助算法以相对较低的计算资源消耗来找到最佳逻辑映射。采用适合度近似方法可以显着减少适合度评估的时间消耗。另外,提出了一种将精确度和近似度的适合度评估方法相结合的混合适合度评估策略,以平衡适合度评估的准确性和时间效率。在各种规模的大量基准实例上验证并评估了所提出方法的有效性和效率,并且还观察到了MA / FA在保持有效性和效率之间保持良好平衡的优势。

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