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R. Thapa; A. Garikipati; M. Ciobanu; N.P. Singh; E. Browning; J. DeCurzio; G. Barnes; F.A. Dinenno; Q. Mao; R. Das – Journal of Autism and Developmental Disorders, 2024
Purpose: Disorders on the autism spectrum have characteristics that can manifest as difficulties with communication, executive functioning, daily living, and more. These challenges can be mitigated with early identification. However, diagnostic criteria has changed from DSM-IV to DSM-5, which can make diagnosing a disorder on the autism spectrum…
Descriptors: Autism Spectrum Disorders, Symptoms (Individual Disorders), Clinical Diagnosis, Artificial Intelligence
Kim, Johanna Inhyang; Bang, Sungkyu; Yang, Jin-Ju; Kwon, Heejin; Jang, Soomin; Roh, Sungwon; Kim, Seok Hyeon; Kim, Mi Jung; Lee, Hyun Ju; Lee, Jong-Min; Kim, Bung-Nyun – Journal of Autism and Developmental Disorders, 2023
Multimodal imaging studies targeting preschoolers and low-functioning autism spectrum disorder (ASD) patients are scarce. We applied machine learning classifiers to parameters from T1-weighted MRI and DTI data of 58 children with ASD (age 3-6 years) and 48 typically developing controls (TDC). Classification performance reached an accuracy,…
Descriptors: Preschool Children, Autism Spectrum Disorders, Control Groups, Classification
Zhao, Zhong; Zhu, Zhipeng; Zhang, Xiaobin; Tang, Haiming; Xing, Jiayi; Hu, Xinyao; Lu, Jianping; Qu, Xingda – Journal of Autism and Developmental Disorders, 2022
Our study investigated the feasibility of using head movement features to identify individuals with autism spectrum disorder (ASD). Children with ASD and typical development (TD) were required to answer ten yes--no questions, and they were encouraged to nod/shake head while doing so. The head rotation range (RR) and the amount of rotation per…
Descriptors: Autism, Pervasive Developmental Disorders, Motion, Human Body
Vasiliki Holeva; V. A. Nikopoulou; C. Lytridis; C. Bazinas; P. Kechayas; G. Sidiropoulos; M. Papadopoulou; M. D. Kerasidou; C. Karatsioras; N. Geronikola; G. A. Papakostas; V. G. Kaburlasos; A. Evangeliou – Journal of Autism and Developmental Disorders, 2024
Difficulties with social interaction characterise children with Autism Spectrum Disorders and have a negative impact in their everyday life. Integrating a social-humanoid robot within the standard clinical treatment has been proven promising. The main aim of this randomised controlled study was to evaluate the effectiveness of a robot-assisted…
Descriptors: Autism Spectrum Disorders, Children, Professional Personnel, Artificial Intelligence
Barik, Kasturi; Watanabe, Katsumi; Bhattacharya, Joydeep; Saha, Goutam – Journal of Autism and Developmental Disorders, 2023
In this study, we aimed to find biomarkers of autism in young children. We recorded magnetoencephalography (MEG) in thirty children (4-7 years) with autism and thirty age, gender-matched controls while they were watching cartoons. We focused on characterizing neural oscillations by amplitude (power spectral density, PSD) and phase (preferred phase…
Descriptors: Autism Spectrum Disorders, Young Children, Measurement Techniques, Diagnostic Tests
Mujeeb Rahman, K. K.; Monica Subashini, M. – Journal of Autism and Developmental Disorders, 2022
Autism spectrum disorder (ASD) is an abnormal condition of brain development characterized by impaired cognitive ability, speech and human interactions, in addition to a set of repetitive and stereotyped patterns of behaviours. Although no cure for autism exists, early medical intervention can improve the associated symptoms and quality of life.…
Descriptors: Screening Tests, Autism, Pervasive Developmental Disorders, Artificial Intelligence
Minissi, Maria Eleonora; Chicchi Giglioli, Irene Alice; Mantovani, Fabrizia; Alcañiz Raya, Mariano – Journal of Autism and Developmental Disorders, 2022
The assessment of autism spectrum disorder (ASD) is based on semi-structured procedures addressed to children and caregivers. Such methods rely on the evaluation of behavioural symptoms rather than on the objective evaluation of psychophysiological underpinnings. Advances in research provided evidence of modern procedures for the early assessment…
Descriptors: Autism, Pervasive Developmental Disorders, Identification, Artificial Intelligence
Isabelle Préfontaine; Marc J. Lanovaz; Mélina Rivard – Journal of Autism and Developmental Disorders, 2024
Although early behavioral intervention is considered as empirically-supported for children with autism, estimating treatment prognosis is a challenge for practitioners. One potential solution is to use machine learning to guide the prediction of the response to intervention. Thus, our study compared five machine algorithms in estimating treatment…
Descriptors: Autism Spectrum Disorders, Students with Disabilities, Behavior Modification, Intervention
Lin Wu – Journal of Autism and Developmental Disorders, 2024
The rapid development of social reform and the economy has brought great challenges to the mental health of college students. However, there are few studies on the impact of these psychological problems on college students' English learning. As a special group about to enter society, studying the mental health of college students in foreign…
Descriptors: Second Language Learning, Student Adjustment, Mental Health, Artificial Intelligence
Zhang, Lian; Weitlauf, Amy S.; Amat, Ashwaq Zaini; Swanson, Amy; Warren, Zachary E.; Sarkar, Nilanjan – Journal of Autism and Developmental Disorders, 2020
Existing literature regarding social communication outcomes of interventions in autism spectrum disorder (ASD) depends upon human raters, with limited generalizability to real world settings. Technological innovation, particularly virtual reality (VR) and collaborative virtual environments (CVE), could offer a replicable, low cost measurement…
Descriptors: Interpersonal Communication, Cooperation, Autism, Pervasive Developmental Disorders
Cantin-Garside, Kristine D.; Kong, Zhenyu; White, Susan W.; Antezana, Ligia; Kim, Sunwook; Nussbaum, Maury A. – Journal of Autism and Developmental Disorders, 2020
Traditional self-injurious behavior (SIB) management can place compliance demands on the caregiver and have low ecological validity and accuracy. To support an SIB monitoring system for autism spectrum disorder (ASD), we evaluated machine learning methods for detecting and distinguishing diverse SIB types. SIB episodes were captured with body-worn…
Descriptors: Self Destructive Behavior, Autism, Pervasive Developmental Disorders, Identification
Bone, Daniel; Goodwin, Matthew S.; Black, Matthew P.; Lee, Chi-Chun; Audhkhasi, Kartik; Narayanan, Shrikanth – Journal of Autism and Developmental Disorders, 2015
Machine learning has immense potential to enhance diagnostic and intervention research in the behavioral sciences, and may be especially useful in investigations involving the highly prevalent and heterogeneous syndrome of autism spectrum disorder. However, use of machine learning in the absence of clinical domain expertise can be tenuous and lead…
Descriptors: Clinical Diagnosis, Autism, Pervasive Developmental Disorders, Artificial Intelligence