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Hardware/software partitioning heuristics approaches

机译:硬件/软件分区启发式方法

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摘要

Hardware/Software partitioning presents a critical problem in the co-design methodology. It resides on deciding which processes of the embedded application should be executed on a specific hardware architecture and which ones can be implemented on general purpose processor (software architecture), taking into account a set of constraints. The hardware architecture is selected to increase the embedded system performance (execution time, area, energy, etc.) and speedup design. However, the software architecture is more flexible and inexpensive. It is, generally, chosen to decrease the design cost and complexity. Several significant research work on hardware/software partitioning techniques and/or algorithms exist. In this paper, we will presents a comparative study of different hardware/software partitioning algorithms. Performance analysis reveals that Particle Swarm Optimization (PSO) algorithm outperforms Simulated Annealing (SA) algorithm, Ant Colony Optimization (ACO), algorithm Genetic Algorithm (GA) and the Fuzzy C-Means (FCM) algorithm.
机译:硬件/软件分区在协同设计方法中提出了一个关键问题。它取决于决定一组约束的条件,确定嵌入式应用程序的哪些过程应在特定的硬件体系结构上执行,哪些过程可以在通用处理器(软件体系结构)上实现。选择硬件体系结构可提高嵌入式系统的性能(执行时间,面积,能源等)并加快设计速度。但是,软件体系结构更灵活,更便宜。通常,选择它是为了降低设计成本和复杂性。存在关于硬件/软件分区技术和/或算法的若干重要研究工作。在本文中,我们将对不同的硬件/软件分区算法进行比较研究。性能分析表明,粒子群优化(PSO)算法优于模拟退火(SA)算法,蚁群优化(ACO),遗传算法(GA)和模糊C均值(FCM)算法。

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