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A SYSTEM FOR MULTI-PERSPECTIVE DISCOURSE WITHIN A DIALOG

机译:在对话中进行多视角讨论的系统

摘要

Techniques are described for training and/or utilizing sub-agent machine learning models to generate candidate dialog responses. In various implementations, a user-facing dialog agent (202, 302), or another component on its behalf, selects one of the candidate responses which is closest to user defined global priority objectives (318). Global priority objectives can include values (306) for a variety of dialog features such as emotion, confusion, objective-relatedness, personality, verbosity, etc. In various implementations, each machine learning model includes an encoder portion and a decoder portion. Each encoder portion and decoder portion can be a recurrent neural network (RNN) model, such as a RNN model that includes at least one memory layer, such as a long short-term memory (LSTM) layer.
机译:描述了用于训练和/或利用子代理机器学习模型来生成候选对话响应的技术。在各种实施方式中,面向用户的对话代理(202、302)或代表它的另一组件选择最接近用户定义的全局优先级目标的候选响应之一(318)。全局优先级目标可以包括用于各种对话特征的值(306),诸如情感,困惑,目标相关性,个性,冗长性等。在各种实现中,每个机器学习模型都包括编码器部分和解码器部分。每个编码器部分和解码器部分可以是递归神经网络(RNN)模型,例如包括至少一个存储层(例如长短期存储(LSTM)层)的RNN模型。

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