Multi-task Facial Landmark Detection Network for Early ASD Screening
Joint attention is an important skill that involves coordinating the attention of at least two individuals towards an object or event in early child development, which is usually absent in children with autism. Children’s joint attention is an essential part of the diagnosis of autistic children. To...
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| Published in | Intelligent Robotics and Applications pp. 381 - 391 |
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| Main Authors | , , , , , , , , |
| Format | Book Chapter |
| Language | English |
| Published |
Cham
Springer International Publishing
2022
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| Series | Lecture Notes in Computer Science |
| Subjects | |
| Online Access | Get full text |
| ISBN | 9783031138430 3031138430 |
| ISSN | 0302-9743 1611-3349 |
| DOI | 10.1007/978-3-031-13844-7_37 |
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| Abstract | Joint attention is an important skill that involves coordinating the attention of at least two individuals towards an object or event in early child development, which is usually absent in children with autism. Children’s joint attention is an essential part of the diagnosis of autistic children. To improve the effectiveness of autism screening, in this paper, we propose a multi-task facial landmark detection network to enhance the stability of gaze estimation and the accuracy of the joint attention screening result. In order to verify the proposed method, we recruit 39 toddlers aged from 16 to 32 months in this study and build a children-based facial landmarks dataset from 19 subjects. Experiments show that the accuracy of the joint attention screening result is 92.5% $$\%$$ , which demonstrates the effectiveness of our method. |
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| AbstractList | Joint attention is an important skill that involves coordinating the attention of at least two individuals towards an object or event in early child development, which is usually absent in children with autism. Children’s joint attention is an essential part of the diagnosis of autistic children. To improve the effectiveness of autism screening, in this paper, we propose a multi-task facial landmark detection network to enhance the stability of gaze estimation and the accuracy of the joint attention screening result. In order to verify the proposed method, we recruit 39 toddlers aged from 16 to 32 months in this study and build a children-based facial landmarks dataset from 19 subjects. Experiments show that the accuracy of the joint attention screening result is 92.5% $$\%$$ , which demonstrates the effectiveness of our method. |
| Author | Zhang, Hanlin Lin, Ruihan Ren, Weihong Xu, Xiu Wu, Wenhao Wang, Xinming Liu, Zuode Liu, Honghai Xu, Qiong |
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| Copyright | The Author(s), under exclusive license to Springer Nature Switzerland AG 2022 |
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| DOI | 10.1007/978-3-031-13844-7_37 |
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| Discipline | Computer Science |
| EISBN | 3031138449 9783031138447 |
| EISSN | 1611-3349 |
| Editor | Liu, Lianqing Ren, Weihong Yin, Zhouping Gu, Guoying Wu, Xinyu Liu, Honghai Jiang, Li |
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| Notes | Original Abstract: Joint attention is an important skill that involves coordinating the attention of at least two individuals towards an object or event in early child development, which is usually absent in children with autism. Children’s joint attention is an essential part of the diagnosis of autistic children. To improve the effectiveness of autism screening, in this paper, we propose a multi-task facial landmark detection network to enhance the stability of gaze estimation and the accuracy of the joint attention screening result. In order to verify the proposed method, we recruit 39 toddlers aged from 16 to 32 months in this study and build a children-based facial landmarks dataset from 19 subjects. Experiments show that the accuracy of the joint attention screening result is 92.5%\documentclass[12pt]{minimal} \usepackage{amsmath} \usepackage{wasysym} \usepackage{amsfonts} \usepackage{amssymb} \usepackage{amsbsy} \usepackage{mathrsfs} \usepackage{upgreek} \setlength{\oddsidemargin}{-69pt} \begin{document}$$\%$$\end{document}, which demonstrates the effectiveness of our method. |
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| PublicationSeriesSubtitle | Lecture Notes in Artificial Intelligence |
| PublicationSeriesTitle | Lecture Notes in Computer Science |
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| PublicationSubtitle | 15th International Conference, ICIRA 2022, Harbin, China, August 1–3, 2022, Proceedings, Part I |
| PublicationTitle | Intelligent Robotics and Applications |
| PublicationYear | 2022 |
| Publisher | Springer International Publishing |
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| RelatedPersons | Hartmanis, Juris Gao, Wen Steffen, Bernhard Bertino, Elisa Goos, Gerhard Yung, Moti |
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| SubjectTerms | Autism Joint attention Multi-task facial landmark detection |
| Title | Multi-task Facial Landmark Detection Network for Early ASD Screening |
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