个人数字助理的端到端语言理解和对话管理概述

R. Sarikaya, Paul A. Crook, Alex Marin, Minwoo Jeong, J. Robichaud, Asli Celikyilmaz, Young-Bum Kim, Alexandre Rochette, O. Khan, Xiaohu Liu, D. Boies, T. Anastasakos, Zhaleh Feizollahi, Nikhil Ramesh, H. Suzuki, R. Holenstein, E. Krawczyk, Vasiliy Radostev
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引用次数: 59

摘要

口语理解和对话管理已成为与个人数字助理(pda)交互的关键技术。pda的覆盖范围、复杂性和规模都比以前的会话理解系统大得多。因此,出现了新的问题。在本文中,我们概述了PDA的语言理解和对话管理功能,特别关注Microsoft的PDA Cortana。我们解释了用于语言理解和对话管理的系统体系结构,指出了它与以前最先进的系统的不同之处,并描述了关键组件。我们还报告了一组实验,详细说明了系统在各种场景和任务上的性能。我们描述了如何端到端测量用户体验的质量,并讨论了开放的问题。
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An overview of end-to-end language understanding and dialog management for personal digital assistants
Spoken language understanding and dialog management have emerged as key technologies in interacting with personal digital assistants (PDAs). The coverage, complexity, and the scale of PDAs are much larger than previous conversational understanding systems. As such, new problems arise. In this paper, we provide an overview of the language understanding and dialog management capabilities of PDAs, focusing particularly on Cortana, Microsoft's PDA. We explain the system architecture for language understanding and dialog management for our PDA, indicate how it differs with prior state-of-the-art systems, and describe key components. We also report a set of experiments detailing system performance on a variety of scenarios and tasks. We describe how the quality of user experiences are measured end-to-end and also discuss open issues.
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