DocumentCode
133745
Title
Fuzzified neural network based human condition monitoring using a small flexible monitoring device
Author
Nii, Manabu ; Kakiuchi, Yoshihiro ; Takahama, Kazunobu ; Matsuda, Takafumi ; Matsumoto, Yuki ; Maenaka, Kazusuke
Author_Institution
Grad. Sch. of Eng., Univ. of Hyogo, Himeji, Japan
fYear
2014
fDate
3-7 Aug. 2014
Firstpage
325
Lastpage
330
Abstract
For maintaining our daily healthcare, we need to understand our own physical condition. In understanding such data, additional information such as what the subject is doing at that time is needed. For example, let us assume that we have a record of a certain heart rate 90. If such value is observed when the subject person was sleeping, that value is high and the subject may have some trouble on his/her health. On the other hand, when the subject was running, the subject has no problem on his/her health. In this paper, we propose a combined system for maintaining our healthcare. Our proposed system consists of both systems; (1) a fuzzified neural network based unusual condition detection and (2) a standard neural network based action estimation. The proposed system can handle multiple kinds of sensors´ data. In this paper, the following three kinds of sensors were handled; (1) three-axis acceleration data, (2) heart rate, and (3) breathing rate. From experimental results, the effectiveness of our proposed system is shown for understanding our conditions.
Keywords
fuzzy neural nets; health care; learning (artificial intelligence); medical signal processing; patient monitoring; sensor fusion; breathing rate; daily healthcare; fuzzified neural network based human condition monitoring; heart rate; physical condition; sensor data handling; small flexible monitoring device; standard neural network based action estimation; three-axis acceleration data; unusual condition detection; Acceleration; Artificial neural networks; Databases; Micromechanical devices; Monitoring;
fLanguage
English
Publisher
ieee
Conference_Titel
World Automation Congress (WAC), 2014
Conference_Location
Waikoloa, HI
Type
conf
DOI
10.1109/WAC.2014.6935920
Filename
6935920
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