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首页> 外文期刊>ACM Transactions on Embedded Computing Systems >Integrating Memory Optimization with Mapping Algorithms for Multi-Processors System-on-Chip
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Integrating Memory Optimization with Mapping Algorithms for Multi-Processors System-on-Chip

机译:将内存优化与映射算法集成到多处理器片上系统中

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摘要

Due to their great ability to parallelize at a very high integration level, Multi-Processors Systems-on-Chip (MPSoCs) are good candidates for systems and applications such as multimedia. Memory is becoming a key player for significant improvements in these applications (power, performance and area). The large amount of data manipulated by these applications requires high-capacity computing and memory. Lately, new programming models have been introduced. This leads to the need of new optimization and mapping techniques suitable for embedded systems and their programming models. This article presents novel approaches for combining memory optimization with mapping of data-driven applications while considering anti-dependence conflicts. Two different approaches are studied and integrated with existing mapping algorithms. The first approach (based on heuristic algorithms) keeps the graph transformation for memory optimization stage from the mapping stage and enables their combination in a design flow. The second approach (based on evolutionary algorithms) combines these two stages and integrates them in a unique stage. Some significant improvements are obtained for memory gain, communication load and physical links.
机译:由于它们具有很高的高度并行化并行能力,因此多处理器片上系统(MPSoC)是多媒体等系统和应用的理想之选。内存正在成为这些应用程序(电源,性能和面积)的重大改进的关键因素。这些应用程序处理的大量数据需要大容量的计算和内存。最近,引入了新的编程模型。这导致需要适用于嵌入式系统及其编程模型的新的优化和映射技术。本文介绍了结合内存优化和数据驱动的应用程序映射同时考虑反依赖冲突的新颖方法。研究了两种不同的方法,并将它们与现有的映射算法集成在一起。第一种方法(基于启发式算法)使内存优化阶段的图形转换与映射阶段保持一致,并允许它们在设计流程中进行组合。第二种方法(基于进化算法)结合了这两个阶段,并将它们整合到一个独特的阶段。对于内存增益,通信负载和物理链接,获得了一些显着的改进。

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