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首页> 外文期刊>Embedded Systems Letters, IEEE >HypAp: A Hypervolume-Based Approach for Refining the Design of Embedded Systems
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HypAp: A Hypervolume-Based Approach for Refining the Design of Embedded Systems

机译:HypAp:一种基于超容量的方法,用于改进嵌入式系统的设计

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摘要

Designing complex embedded systems requires simultaneous optimization of multiple system performance metrics that can be addressed by applying Pareto-based multiobjective optimization techniques. At the end of this type of optimization process, designers always face Pareto fronts (PFs) including a large number of near-optimal solutions from which selecting the most proper system implementation is potentially infeasible. In this letter, for the first time, we present HypAp, a hypervolume-based automated approach to systematically help designers efficiently choose their preferred solutions after the optimization process. HypAp is a two-stage approach relying on clustering Pareto optimal solutions and then finding a subset of solutions that maximizes the hypervolume by using a genetic algorithm. The performance of HypAp is evaluated through applying HypAp to the PF by the case study of mapping applications on network-on-chip-based heterogeneous MPSoC.
机译:设计复杂的嵌入式系统需要同时优化多个系统性能指标,这可以通过应用基于Pareto的多目标优化技术来解决。在这种类型的优化过程结束时,设计人员始终面临着帕累托阵线(PF),其中包括大量接近最佳的解决方案,从中可能无法选择最合适的系统实现。在这封信中,我们首次介绍了HypAp,这是一种基于超容量的自动化方法,可在优化过程后系统地帮助设计人员有效地选择其首选解决方案。 HypAp是一种两阶段方法,依赖于聚类Pareto最优解,然后使用遗传算法找到使超体积最大化的解决方案子集。通过将HypAp应用于PF,通过基于芯片上网络的异构MPSoC上的映射应用程序的案例研究来评估HypAp的性能。

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