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Towards Automatic Screening of Typical and Atypical Behaviors in Children With Autism

Cook, Andrew; Mandal, Bappaditya; Berry, Donna; Johnson, Matthew

Authors

Andrew Cook

Donna Berry

Matthew Johnson



Abstract

Autism spectrum disorders (ASD) impact the cognitive, social, communicative and behavioral abilities of an individual. The development of new clinical decision support systems is of importance in reducing the delay between presentation of symptoms and an accurate diagnosis. In this work, we contribute a new database consisting of video clips of typical (normal) and atypical (such as hand flapping, spinning or rocking) behaviors, displayed in natural settings, which have been collected from the YouTube video website. We propose a preliminary non-intrusive approach based on skeleton keypoint identification using pretrained deep neural networks on human body video clips to extract features and perform body movement analysis that differentiates typical and atypical behaviors of children. Experimental results on the newly contributed database show that our platform performs best with decision tree as the classifier when compared to other popular methodologies and offers a baseline against which alternate approaches may developed and tested.

Citation

Cook, A., Mandal, B., Berry, D., & Johnson, M. (2019, October). Towards Automatic Screening of Typical and Atypical Behaviors in Children With Autism. Paper presented at 2019 IEEE International Conference on Data Science and Advanced Analytics (DSAA), Washington, DC, USA

Presentation Conference Type Conference Paper (unpublished)
Conference Name 2019 IEEE International Conference on Data Science and Advanced Analytics (DSAA)
Conference Location Washington, DC, USA
Start Date Oct 5, 2019
End Date Oct 8, 2019
Publication Date 2019-10
Deposit Date May 25, 2023
Series Title 2019 IEEE International Conference on Data Science and Advanced Analytics (DSAA)
DOI https://doi.org/10.1109/dsaa.2019.00065
Publisher URL https://ieeexplore.ieee.org/document/8964198