Towards a cognitive architecture to enable natural language interaction in co-constructive task learning
Manuel Scheibl, Birte Richter, Alissa Müller, Michael Beetz, Britta Wrede
- 发表年份
- 2025
- 访问权限
- 开放获取
摘要
This research addresses the question, which characteristics a cognitive architecture must have to leverage the benefits of natural language in Co-Constructive Task Learning (CCTL). To provide context, we first discuss Interactive Task Learning (ITL), the mechanisms of the human memory system, and the significance of natural language and multi-modality. Next, we examine the current state of cognitive architectures, analyzing their capabilities to inform a concept of CCTL grounded in multiple sources. We then integrate insights from various research domains to develop a unified framework. Finally, we conclude by identifying the remaining challenges and requirements necessary to achieve CCTL in Human-Robot Interaction (HRI).
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