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Impact Of Experiencing Misrecognition By Teachable Agents On Learning And Rapport

Conference Paper/Proceedings
Impact Of Experiencing Misrecognition By Teachable Agents On Learning And Rapport
Publication Year:
2023
Publication Source:
Communications In Computer And Information Science
Volume:
1831 CCIS
Funding Type:
ECR:Core
Author(s):
Asano, Yuya; Litman, Diane; Yu, Mingzhi; Lobczowski, Nikki; Nokes-Malach, Timothy; Kovashka, Adriana; Walker, Erin
Supporting Project(s):

While speech-enabled teachable agents have some advantages over typing-based ones, they are vulnerable to errors stemming from misrecognition by automatic speech recognition (ASR). These errors may propagate, resulting in unexpected changes in the flow of conversation. We analyzed how such changes are linked with learning gains and learners’ rapport with the agents. Our results show they are not related to learning gains or rapport, regardless of the types of responses the agents should have returned given the correct input from learners without ASR errors. We also discuss the implications for optimal error-recovery policies for teachable agents that can be drawn from these findings. © 2023, The Author(s), under exclusive license to Springer Nature Switzerland AG.