MOGAC: a multiobjective genetic algorithm for the co-synthesis of hardware-software embedded systems

R. Dick, N. Jha
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引用次数: 315

Abstract

We present a hardware-software co-synthesis system, called MOGAC, that partitions and schedules embedded system specifications consisting of multiple periodic task graphs. MOGAC synthesizes real-time heterogeneous distributed architectures using an adaptive multiobjective genetic algorithm that can escape local minima. Price and power consumption are optimized while hard real-time constraints are met. MOGAC places no limit on the number of hardware or software processing elements in the architectures it synthesizes. Our general model for bus and point-to-point communication links allows a number of link types to be used in an architecture. Application-specific integrated circuits consisting of multiple processing elements are modeled. Heuristics are used to tackle multi-rate systems, as well as systems containing task graphs whose hyperperiods are large relative to their periods. The application of a multiobjective optimization strategy allows a single co-synthesis run to produce multiple designs which trade off different architectural features. Experimental results indicate that MOGAC has advantages over previous work in terms of solution quality and running time.
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MOGAC:一种用于嵌入式系统软硬件协同合成的多目标遗传算法
我们提出了一个软硬件协同合成系统,称为MOGAC,它可以划分和调度由多个周期任务图组成的嵌入式系统规范。MOGAC采用一种可避免局部最小值的自适应多目标遗传算法综合了实时异构分布式体系结构。在满足硬实时约束的情况下,优化了价格和功耗。MOGAC对它所合成的体系结构中的硬件或软件处理元素的数量没有限制。我们的总线和点对点通信链路的通用模型允许在体系结构中使用许多链路类型。对由多个处理元件组成的专用集成电路进行了建模。启发式用于处理多速率系统,以及包含超周期相对于其周期较大的任务图的系统。多目标优化策略的应用允许单次协同综合运行产生多种设计,这些设计权衡了不同的建筑特征。实验结果表明,MOGAC算法在求解质量和运行时间上都优于以往的算法。
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