Proactive Suggestion Generation: Data and Methods for Stepwise Task Assistance

E. Nouri, Robert Sim, Adam Fourney, Ryen W. White
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引用次数: 3

Abstract

Conversational systems such as digital assistants can help users per-form many simple tasks upon request. Looking to the future, these systems will also need to fully support more complex, multi-step tasks (e.g., following cooking instructions), and help users complete those tasks, e.g., via useful and relevant suggestions made during the process. This paper takes the first step towards automatic generation of task-related suggestions. We introduce proactive suggestion generation as a novel task of natural language generation, in which a decision is made to inject a suggestion into an ongoing user dialog and one is then automatically generated. We propose two types of stepwise suggestions: multiple-choice response generation and text generation. We provide several models for each type of suggestion, including binary and multi-class classification, and text generation.
主动建议生成:逐步任务协助的数据和方法
诸如数字助理之类的会话系统可以根据请求帮助用户执行许多简单的任务。展望未来,这些系统还需要完全支持更复杂、多步骤的任务(例如,遵循烹饪指令),并通过在此过程中提出有用和相关的建议来帮助用户完成这些任务。本文向自动生成任务相关建议迈出了第一步。我们将主动建议生成作为自然语言生成的一项新任务引入,在该任务中,决定向正在进行的用户对话中注入建议,然后自动生成建议。我们提出了两种类型的逐步建议:选择题答案生成和文本生成。我们为每种类型的建议提供了几个模型,包括二元分类和多类分类,以及文本生成。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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