EYE-C: Eye-Contact Robust Detection and Analysis during Unconstrained Child-Therapist Interactions in the Clinical Setting of Autism Spectrum Disorders

Author:

Alvari GianpaoloORCID,Coviello Luca,Furlanello Cesare

Abstract

The high level of heterogeneity in Autism Spectrum Disorder (ASD) and the lack of systematic measurements complicate predicting outcomes of early intervention and the identification of better-tailored treatment programs. Computational phenotyping may assist therapists in monitoring child behavior through quantitative measures and personalizing the intervention based on individual characteristics; still, real-world behavioral analysis is an ongoing challenge. For this purpose, we designed EYE-C, a system based on OpenPose and Gaze360 for fine-grained analysis of eye-contact episodes in unconstrained therapist-child interactions via a single video camera. The model was validated on video data varying in resolution and setting, achieving promising performance. We further tested EYE-C on a clinical sample of 62 preschoolers with ASD for spectrum stratification based on eye-contact features and age. By unsupervised clustering, three distinct sub-groups were identified, differentiated by eye-contact dynamics and a specific clinical phenotype. Overall, this study highlights the potential of Artificial Intelligence in categorizing atypical behavior and providing translational solutions that might assist clinical practice.

Publisher

MDPI AG

Subject

General Neuroscience

Cited by 5 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. Attention Analysis in Robotic-Assistive Therapy for Children With Autism;IEEE Transactions on Neural Systems and Rehabilitation Engineering;2024

2. A Review of and Roadmap for Data Science and Machine Learning for the Neuropsychiatric Phenotype of Autism;Annual Review of Biomedical Data Science;2023-08-10

3. One size does not fit all: detecting attention in children with autism using machine learning;User Modeling and User-Adapted Interaction;2023-06-17

4. Sharing Worlds: Design of a Real-Time Attention Classifier for Robotic Therapy of ASD Children;2022 International Conference on Rehabilitation Robotics (ICORR);2022-07-25

5. C1q/TNF-related protein-1: Potential biomarker for early diagnosis of autism spectrum disorder;International Journal of Immunopathology and Pharmacology;2022-01

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