Paper Title :Dataset for the Construction of an Artificial Intelligence Learning Model for Sleep Analysis
Author :Junguk Ahn, Un Gu Kang, Seong Yun Kang, Byung Mun Lee
Article Citation :Junguk Ahn ,Un Gu Kang ,Seong Yun Kang ,Byung Mun Lee ,
(2018 ) " Dataset for the Construction of an Artificial Intelligence Learning Model for Sleep Analysis " ,
International Journal of Advance Computational Engineering and Networking (IJACEN) ,
pp. 13-16,
Volume-6, Issue-12
Abstract : With the increasing interest in sleep, many devices and applications that can assist sleep have been developed to
improve the quality of sleep. Using such devices and applications, elements to analyze quality of sleep, such as tossing and
turning and snoring, can be measured using sensors and the surrounding temperature, humidity, noise and brightness can be
measured to analyze the appropriateness of the sleep environment. However, not only does analyzing the sleep data
measured by simply using an algorithm not accurately measure the quality of sleep, it doesn’t fully utilize the correlation
between data characteristics and the data. This is a study on a dataset to construct a learning model to analyze the
relationship between quality of sleep and sleep environment. To do so, data was analyzed using different sensors, and the
characteristics that can be used to construct a learning model were investigated. Also, elements that can decide quality of
sleep were collected along with analyzed data characteristics to define the dataset, which can be used to construct the
learning model. By analyzing sleep through this dataset, an environment for optimum sleep can be expected.
Keywords - AI, Machine learning, Sleep Analysis, Healthcare
Type : Research paper
Published : Volume-6, Issue-12
DOIONLINE NO - IJACEN-IRAJ-DOIONLINE-14435
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Copyright: © Institute of Research and Journals
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Published on 2019-02-21 |
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