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End-to-End Automation Frameworks for Mapping Neural Networks onto Embedded Devices and Early Performance Predictions: A Survey

机译:用于将神经网络映射到嵌入式设备和早期性能预测的端到端自动化框架:调查

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Recently automated frameworks have been proposed, mapping neural networks from a high-level description onto embedded devices, most of them in an end-to-end manner. This paper aims to give an overview of their main characteristics and achievements. A special focus is lying on internal predictions during design space exploration (DSE) regarding hardware targets (performance, area or power consumption), enabling fast exploration of the individually defined search spaces, especially in early design stages. Additionally, recent research results that are not part of such frameworks, but present novel estimation techniques are also covered by this work.
机译:最近已经提出了自动框架,将神经网络从高级描述映射到嵌入式设备上,大多数以端到端的方式。 本文旨在概述其主要特征和成就。 特别焦点在设计空间探索(DSE)期间阐述了关于硬件目标(性能,区域或功耗)的内部预测,从而能够快速探索单独定义的搜索空间,尤其是早期设计阶段。 此外,最近的研究结果不是此类框架的一部分,但是本工作也包括目前的新颖估算技术。

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