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ADHD/Autism Disorders Clustering Method Using Korean Morphology Analyzer with Observed Behaviors Data

Title
ADHD/Autism Disorders Clustering Method Using Korean Morphology Analyzer with Observed Behaviors Data
Author(s)
Kang, Won SeokYun, Sang HunKwon, Hyeong OhChoi, Moon JongKang, Jung Bae
DGIST Authors
Kang, Won SeokYun, Sang HunKwon, Hyeong OhChoi, Moon JongKang, Jung Bae
Issued Date
2014
Type
Article
ISSN
2147-5369
Abstract
In this paper, we propose a method to cluster Attention Deficit/Hyperactivity Disorder (ADHD) and autism
disorder using observed behaviors data. We utilized a Korean morphology analyzer to analysis features of the
observed behaviors data which was recorded by text type. The proposed method aims to support an assistance
tool to a special education and rehabilitation teachers to reduce the educating efforts. To show the efficiency of
the proposed method, we used the historical text-typed records accumulated in the Research Institute of Special
Education and Rehabilitation Science (RISPERS), Daegu University. The data had been recorded for 5 years. As a
result of simulation, we confirmed that the proposed method achieved the clustering accuracy of 60% by
choosing and evaluating the random result sample of 200 children of disorders.
URI
http://hdl.handle.net/20.500.11750/13371

http://archives.sproc.org/index.php/P-ITCS/article/view/3044/2454
Publisher
Academic World Education & Research Center
Related Researcher
  • 강원석 Kang, Won-Seok
  • Research Interests Digital Phenotyping; Data Mining & Machine Learning for Text & Multimedia; Brain-Sense-ICTConvergence Computing; Computational Olfaction Measurement; Simulation&Modeling
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Appears in Collections:
ETC 1. Journal Articles
Division of AI, Big data and Block chain 1. Journal Articles

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