Can Explainable AI Foster Trust in a Customer Dialogue System?

Elena Stoll, Adam Urban, Philipp Ballin, D. Kammer
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Abstract

In this poster paper we present a web user study about a customer dialogue system, in which participants assigned tickets based on an automatic classification to different departments and answered questions about the perceived classification performance. Completion times were significantly shorter when offering explanations on the classification process, while task success and trust in the interface did not depend on showing explanations or not. Based on the results, future studies should be confined to smaller scopes and investigate more techniques for explainable AI.
可解释的人工智能能否在客户对话系统中培养信任?
在这篇海报论文中,我们提出了一个关于客户对话系统的网络用户研究,在这个系统中,参与者根据自动分类将票分配给不同的部门,并回答有关感知分类性能的问题。当提供分类过程的解释时,完成时间显着缩短,而任务成功和对界面的信任不依赖于是否显示解释。基于这些结果,未来的研究应该局限在更小的范围内,并研究更多可解释的人工智能技术。
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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