Data-Driven Dialogue Systems for Social Agents

September 10, 2017 ยท Declared Dead ยท ๐Ÿ› International Workshop on Spoken Dialogue Systems Technology

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Authors Kevin K. Bowden, Shereen Oraby, Amita Misra, Jiaqi Wu, Stephanie Lukin arXiv ID 1709.03190 Category cs.CL: Computation & Language Citations 20 Venue International Workshop on Spoken Dialogue Systems Technology Last Checked 4 months ago
Abstract
In order to build dialogue systems to tackle the ambitious task of holding social conversations, we argue that we need a data driven approach that includes insight into human conversational chit chat, and which incorporates different natural language processing modules. Our strategy is to analyze and index large corpora of social media data, including Twitter conversations, online debates, dialogues between friends, and blog posts, and then to couple this data retrieval with modules that perform tasks such as sentiment and style analysis, topic modeling, and summarization. We aim for personal assistants that can learn more nuanced human language, and to grow from task-oriented agents to more personable social bots.
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