Chorus: a crowd-powered conversational assistant

Walter S. Lasecki, Rachel Wesley, Jeffrey Nichols, A. Kulkarni, James F. Allen, Jeffrey P. Bigham
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引用次数: 174

Abstract

Despite decades of research attempting to establish conversational interaction between humans and computers, the capabilities of automated conversational systems are still limited. In this paper, we introduce Chorus, a crowd-powered conversational assistant. When using Chorus, end users converse continuously with what appears to be a single conversational partner. Behind the scenes, Chorus leverages multiple crowd workers to propose and vote on responses. A shared memory space helps the dynamic crowd workforce maintain consistency, and a game-theoretic incentive mechanism helps to balance their efforts between proposing and voting. Studies with 12 end users and 100 crowd workers demonstrate that Chorus can provide accurate, topical responses, answering nearly 93% of user queries appropriately, and staying on-topic in over 95% of responses. We also observed that Chorus has advantages over pairing an end user with a single crowd worker and end users completing their own tasks in terms of speed, quality, and breadth of assistance. Chorus demonstrates a new future in which conversational assistants are made usable in the real world by combining human and machine intelligence, and may enable a useful new way of interacting with the crowds powering other systems.
合唱:一个群众性的对话助手
尽管几十年来的研究试图在人与计算机之间建立会话交互,但自动会话系统的能力仍然有限。在本文中,我们介绍了合唱,一个群众动力会话助手。当使用Chorus时,终端用户可以连续地与看似单一的对话伙伴进行对话。在幕后,Chorus利用多个人群工作人员提出并对回应进行投票。共享内存空间有助于动态群体劳动力保持一致性,博弈论激励机制有助于平衡他们在提议和投票之间的努力。对12名终端用户和100名人群工作人员的研究表明,Chorus可以提供准确的、热门的回答,正确回答近93%的用户提问,并在95%以上的回答中保持主题。我们还观察到,在速度、质量和广度方面,Chorus比将最终用户与单个人群工作人员配对以及最终用户完成自己的任务具有优势。Chorus展示了一个新的未来,通过结合人类和机器智能,对话助手可以在现实世界中使用,并可能提供一种有用的新方式,与驱动其他系统的人群进行交互。
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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