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Systems and methods for configuring programmable logic devices for deep learning networks

机译:用于为深学习网络配置可编程逻辑设备的系统和方法

摘要

Systems and methods may configure a programmable logic device to efficiently run a deep learning (DL) network. Architecture code and algorithmic code may be generated. The architecture code may define convolutional and fully connected processor cores structured to run the layers of a Deep Neural Network (DNN). The processor cores may be interconnected by a First In First Out (FIFO) memory. The architecture code may also define stride-efficient memories for implementing convolution. The algorithmic code may include configuration instructions for running the DNN's layers at the processor cores. The algorithmic code may also include a schedule for executing the configuration instructions on the processor cores, for moving network parameters to the processor cores, and for transferring outputs between the layers.
机译:系统和方法可以配置可编程逻辑设备以有效地运行深度学习(DL)网络。可以生成体系结构代码和算法代码。架构代码可以定义构造的卷积和完全连接的处理器核心以运行深神经网络(DNN)的层。处理器核心可以通过第一输出(FIFO)存储器中的第一界面互连。该架构代码还可以定义用于实现卷积的跨文化回忆。算法代码可以包括用于在处理器核心处运行DNN层的配置指令。算法代码还可以包括用于在处理器核上执行配置指令的时间表,用于将网络参数移动到处理器核心,以及用于在层之间传输输出。

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