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CONTINUOUS CONTROL OF ATTENTION FOR A DEEP LEARNING NETWORK

机译:深层学习网络的注意力持续控制

摘要

A computer-implemented method for reducing computation cost associated with a machine learning task performed by a computer system by implementing continuous control of attention for a deep learning network includes initializing a control-value function, an observation-value function and a sequence of states associated with a current episode. If a current epoch associated with the current episode is odd, an observation-action is selected, the observation-action is executed to observe a partial image, and the observation-value function is updated based on the partial image and the control-value function. If the current epoch is even, a control-action is selected, the control-action is executed to obtain a reward corresponding to the control-action, and the control-value function is updated based on the reward and the observation-value function.
机译:通过实现对深度学习网络的注意力的连续控制来减少与计算机系统执行的机器学习任务相关的计算成本的计算机实现的方法,包括初始化控制值函数,观察值函数和相关的状态序列有当前情节。如果与当前情节关联的当前纪元是奇数,则选择观察动作,执行观察动作以观察部分图像,并且基于部分图像和控制值函数来更新观察值函数。 。如果当前纪元是偶数,则选择控制动作,执行该控制动作以获得与该控制动作相对应的奖励,并且基于奖励和观察值功能来更新控制值功能。

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