Data Acquisition Devices Towards a System for Monitoring Sensory Processing Disorders

被引:8
作者
Vicente-Samper, Jose Maria [1 ]
Avila-Navarro, Ernesto [2 ]
Sabater-Navarro, Jose Maria [1 ]
机构
[1] Miguel Hernandez Univ Elche, Dept Syst Engn & Automat, Elche 03202, Spain
[2] Miguel Hernandez Univ Elche, Dept Mat Sci Opt & Elect Technol, Elche 03202, Spain
来源
IEEE ACCESS | 2020年 / 8卷
关键词
Monitoring; Biology; Data acquisition; Biomedical monitoring; Software; Atmospheric measurements; Temperature measurement; Autism spectrum disorder; Bluetooth low energy; machine learning; PPG; sensory processing disorder; wearable devices; BODY-TEMPERATURE VARIABILITY; AUTISM SPECTRUM DISORDERS; CHILDREN; PREVALENCE;
D O I
10.1109/ACCESS.2020.3029692
中图分类号
TP [自动化技术、计算机技术];
学科分类号
0812 ;
摘要
People with autism spectrum disorder (ASD) manifest great heterogeneity in their atypical sensory behaviors. It is estimated that 95% of people with ASD have a Sensory Process Disorder (SPD). People with ASD feel the need to control what happens in their environment. However, it is inevitable that new situations occur during a persons daily life. Therefore, it is important to monitor most of the circumstances they face in an attempt to predict the appearance of disorders that end up affecting their behavior. This paper presents the first steps towards the development of a system for knowing the value and effect on the SPD of different biological and environmental parameters. To obtain those variables, two electronic devices have been designed. The first one is an electronic system for capturing environmental variables such as luminosity or humidity, which is portable and mobile. The second electronic device is a soft wearable wristband which gets biological parameters. To know the effect of those variables on the SPD, a complete software platform has been implemented. Both devices upload day-to-day data to a cloud database where the information is stored in timeseries data of different parameters. The system uses the data to learn a personalized model that is designed to manage the SPD of the user. The main novelty is the use of sensor integration, data processing and machine learning techniques to develop a system able to classify the sensory load supported by a user with ASD while performing different activities. The results obtained so far prove the feasibility of the approach.
引用
收藏
页码:183596 / 183605
页数:10
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