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Globally normalized neural networks

机译:全局归一化神经网络

摘要

A method includes training a neural network having parameters on training data, in which the neural network receives an input state and processes the input state to generate a respective score for each decision in a set of decisions. The method includes receiving training data including training text sequences and, for each training text sequence, a corresponding gold decision sequence. The method includes training the neural network on the training data to determine trained values of parameters of the neural network. Training the neural network includes for each training text sequence: maintaining a beam of candidate decision sequences for the training text sequence, updating each candidate decision sequence by adding one decision at a time, determining that a gold candidate decision sequence matching a prefix of the gold decision sequence has dropped out of the beam, and in response, performing an iteration of gradient descent to optimize an objective function.
机译:一种方法,包括在训练数据上训练具有参数的神经网络,其中该神经网络接收输入状态并处理该输入状态以为一组决策中的每个决策生成相应的分数。该方法包括接收训练数据,该训练数据包括训练文本序列,并且对于每个训练文本序列,包括对应的黄金决策序列。该方法包括在训练数据上训练神经网络,以确定神经网络的参数的训练值。对每个训练文本序列进行训练的神经网络包括:为训练文本序列维护一束候选决策序列,通过一次添加一个决策来更新每个候选决策序列,确定与黄金前缀匹配的黄金候选决策序列决策序列从波束中掉出,作为响应,执行梯度下降迭代以优化目标函数。

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