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Performance Prediction of Application Mapping in Manycore Systems with Artificial Neural Networks

机译:人工神经网络中多核系统应用映射的绩效预测

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摘要

The growing demand for smarter high-performance embedded systems leads to the integration of multiple functionalities in on-chip systems with tens (even hundreds) of cores. This trend opens a very challenging question about the optimal resource allocation in those manycore systems. Answering this question is key to meet the performance and energy requirements. This paper deals with a learning technique applicable to manycore systems in order to predict mapping-related performances. The resulting prediction models can enable to improve dynamic resource allocation decisions. Our proposal is demonstrated on two automotive applications with very promising results.
机译:越来越多的对更智能的高性能嵌入式系统的需求导致芯片上系统的多种功能集成,具有数十(甚至数百)的核心。此趋势为这些多核系统中的最佳资源分配开辟了非常挑战性的问题。回答这个问题是满足性能和能源要求的关键。本文涉及适用于多种系统的学习技术,以预测与映射相关的表现。得到的预测模型可以使能够改善动态资源分配决策。我们的提案是在两个汽车应用中证明了一个非常有前途的结果。

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