Augmenting Captions with Emotional Cues: An AR Interface for Real-Time Accessible Communication

Fuente: arXiv
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1. Verfasser: Ubur, Sunday David
Format: Preprint
Veröffentlicht: 2025
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author Ubur, Sunday David
author_facet Ubur, Sunday David
contents This paper introduces an augmented reality (AR) captioning framework designed to support Deaf and Hard of Hearing (DHH) learners in STEM classrooms by integrating non-verbal emotional cues into live transcriptions. Unlike conventional captioning systems that offer only plain text, our system fuses real-time speech recognition with affective and visual signal interpretation, including facial movements, gestures, and vocal tone, to produce emotionally enriched captions. These enhanced captions are rendered in an AR interface developed with Unity and provide contextual annotations such as speaker tone markers (e.g., "concerned") and gesture indicators (e.g., "nods"). The system leverages live camera and microphone input, processed through AI models to detect multimodal cues. Findings from preliminary evaluations suggest that this AR-based captioning approach significantly enhances comprehension and reduces cognitive effort compared to standard captions. Our work emphasizes the potential of immersive environments for inclusive, emotion-aware educational accessibility.
format Preprint
id arxiv_https___arxiv_org_abs_2504_17171
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Augmenting Captions with Emotional Cues: An AR Interface for Real-Time Accessible Communication
Ubur, Sunday David
Human-Computer Interaction
This paper introduces an augmented reality (AR) captioning framework designed to support Deaf and Hard of Hearing (DHH) learners in STEM classrooms by integrating non-verbal emotional cues into live transcriptions. Unlike conventional captioning systems that offer only plain text, our system fuses real-time speech recognition with affective and visual signal interpretation, including facial movements, gestures, and vocal tone, to produce emotionally enriched captions. These enhanced captions are rendered in an AR interface developed with Unity and provide contextual annotations such as speaker tone markers (e.g., "concerned") and gesture indicators (e.g., "nods"). The system leverages live camera and microphone input, processed through AI models to detect multimodal cues. Findings from preliminary evaluations suggest that this AR-based captioning approach significantly enhances comprehension and reduces cognitive effort compared to standard captions. Our work emphasizes the potential of immersive environments for inclusive, emotion-aware educational accessibility.
title Augmenting Captions with Emotional Cues: An AR Interface for Real-Time Accessible Communication
topic Human-Computer Interaction
url https://arxiv.org/abs/2504.17171