Society & Economicsarticle2026-09-14

Evaluating Multimodal Emotion Recognition in Proactive Conversational Agents: A User Study

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Abstract

ABSTRACT This article presents a multimodal emotion recognition module integrated into a proactive Socially Interactive Agent (SIA) powered by generative artificial intelligence. The system evaluates real‐time affective states through two distinct channels: a computer vision‐based facial recognition module and a semantic linguistic analysis engine. To validate the framework, an empirical study was conducted with 20 users who engaged in dynamic, unscripted dialogues with the conversational agent. The findings reveal a significant discrepancy between automated visual cues and actual internal emotional states. When interacting with the AI, users consistently exhibited a ‘poker face’ effect, displaying serious, concentrated facial expressions even when experiencing positive emotions. Consequently, the generative AI linguistic analysis proved significantly more reliable, by contextualizing the users' verbal expressions. Furthermore, an analysis of the interaction dynamics demonstrated that SIAs can effectively elicit specific emotions by adapting conversational themes and employing structured linguistic patterns, such as empathetic or humorous language. However, the study also noted that instances of uncalibrated proactivity occasionally led to user disengagement and a perception of artificiality. Ultimately, this research highlights the necessity of refining SIAs to dynamically adapt to users' emotional evolution, relying on deep linguistic context to foster more natural, human‐like interactions.

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View paper (DOI)Open access versionOpenAlexExpert SystemsPublished 2026-09-14

Authors: Adnana Dragut, Raquel Lacuesta, F. Xavier Gaya-Morey, Jose M. Buades-Rubio

Institutions: Instituto de Nanociencia y Materiales de Aragón, Universidad de Zaragoza, Govern de les Illes Balears, Universitat de les Illes Balears, Fundació Universitat-Empresa de les Illes Balears