Fuzzy decision making in embedded system design

A. D. Nuovo, M. Palesi, Davide Patti, G. Ascia, V. Catania
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引用次数: 29

Abstract

The use of Application Specific Instruction-set Processors (ASIP) is a solution to the problem of increasing complexity in embedded systems design. One of the major challenges in ASIP design is Design Space Exploration (DSE), because of the heterogeneity of the objectives and parameters involved. Typically DSE is a multi- objective search problem, where performance, power, area, etc. are the different optimization criteria. The output of a DSE strategy is a set of candidate design solutions called a Pareto-optimal set. Choosing a solution for system implementation from the Pareto- optimal set can be a difficult task, generally because Pareto-optimal sets can be extremely large or even contain an infinite number of solutions. In this paper we propose a methodology to assist the decision-maker in analysis of the solutions to multi-objective problems. By means of fuzzy clustering techniques, it finds the reduced Pareto subset, which best represents all the Pareto solutions. This optimal subset will be used for further and more accurate (but slower) analysis. As a real application example we address the optimization of area, performance, and power of a VLIW-based embedded system.
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嵌入式系统设计中的模糊决策
应用专用指令集处理器(ASIP)的使用是解决嵌入式系统设计日益复杂问题的一种方法。由于所涉及的目标和参数的异质性,ASIP设计的主要挑战之一是设计空间探索(DSE)。典型的DSE是一个多目标搜索问题,其中性能、功率、面积等是不同的优化标准。DSE策略的输出是一组候选设计解,称为帕累托最优集。从帕累托最优集中选择系统实现的解决方案可能是一项困难的任务,通常是因为帕累托最优集可能非常大,甚至包含无限数量的解决方案。本文提出了一种辅助决策者分析多目标问题解决方案的方法。利用模糊聚类技术,找到最能代表所有Pareto解的约简Pareto子集。这个最优子集将用于进一步和更准确(但更慢)的分析。作为一个实际的应用实例,我们讨论了基于vliw的嵌入式系统的面积、性能和功耗的优化。
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