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MICROTHREADING FOR ACCELERATED DEEP LEARNING

机译:进行微深度学习以加快深度学习

摘要

Techniques in advanced deep learning provide improvements in one or more of accuracy, performance, and energy efficiency. An array of compute elements and routers performs flow-based computations on wavelets of data. Some instructions are performed in iterations, such as one iteration per element of a fabric vector or FIFO. When sources for an iteration of an instruction are unavailable, and/or there is insufficient space to store results of the iteration, indicators associated with operands of the instruction are checked to determine whether other work can be performed. In some scenarios, other work cannot be performed and processing stalls. Alternatively, information about the instruction is saved, the other work is performed, and sometime after the sources become available and/or sufficient space to store the results becomes available, the iteration is performed using the saved information.
机译:高级深度学习中的技术可提高准确性,性能和能源效率中的一项或多项。计算元素和路由器的阵列对数据的小波执行基于流的计算。一些指令以迭代方式执行,例如结构向量或FIFO的每个元素进行一次迭代。当指令迭代的源不可用,和/或没有足够的空间存储迭代结果时,将检查与指令操作数关联的指示符,以确定是否可以执行其他工作。在某些情况下,其他工作无法执行,并且处理停顿。可替代地,保存关于指令的信息,执行其他工作,并且在源变得可用和/或有足够的空间用于存储结果之后的某个时候,使用保存的信息执行迭代。

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