A Wearable Thermometry for Core Body Temperature Measurement and Its Experimental Verification

被引:43
作者
Huang, Ming [1 ]
Tamura, Toshiyo [2 ]
Tang, Zunyi [2 ]
Chen, Wenxi [3 ]
Kanaya, Shigehiko [1 ]
机构
[1] Nara Inst Sci & Technol, Nara 6300192, Japan
[2] Osaka Electrocommun Univ, Neyagawa, Osaka 5750063, Japan
[3] Univ Aizu, Aizu Wakamatsu, Fukushima 9658580, Japan
关键词
Circadian rhythm; clinical use; core body temperature; healthcare; wearable thermometry;
D O I
10.1109/JBHI.2016.2532933
中图分类号
TP [自动化技术、计算机技术];
学科分类号
0812 ;
摘要
A wearable thermometry for core body temperature (CBT) measurement has both healthcare and clinical applications. On the basis of the mechanism of bioheat transfer, we earlier designed and improved a wearable thermometry using the dual-heat-flux method for CBT measurement. In this study, this thermometry is examined experimentally. We studied a fast-changing CBT measurement (FCCM, 55 min, 12 subjects) inside a thermostatic chamber and performed long-term monitoring of CBT (LTM, 24 h, six subjects). When compared with a reference, the Core Temp CM-210 by Terumo, FCCM shows 0.07 degrees C average difference and a 95% CI of [-0.27, 0.12] degrees C. LTM shows no significant difference in parameters for the inference of circadian rhythm. The FCCM and LTM both simulated scenarios in which this thermometry could be used for intensive monitoring and daily healthcare, respectively. The results suggest that because of its convenient design, this thermometry may be an ideal choice for conventional CBT measurements.
引用
收藏
页码:708 / 714
页数:7
相关论文
共 15 条
[1]  
[Anonymous], 2012, BIOMEDICAL SIGNALS S, P228
[2]  
Huang M., 2015, C P IEEE ENG MED BIO, P2395
[3]   Structural Optimization of a Wearable Deep Body Thermometer: From Theoretical Simulation to Experimental Verification [J].
Huang, Ming ;
Tamura, Toshiyo ;
Tang, Zunyi ;
Chen, Wenxi ;
Kanaya, Shigehiko .
JOURNAL OF SENSORS, 2016, 2016
[4]   Evaluation of structural and thermophysical effects on the measurement accuracy of deep body thermometers based on dual-heat-flux method [J].
Huang, Ming ;
Tamura, Toshiyo ;
Chen, Wenxi ;
Kanaya, Shigehiko .
JOURNAL OF THERMAL BIOLOGY, 2015, 47 :26-31
[5]   Accuracy and precision of a novel non-invasive core thermometer [J].
Kimberger, O. ;
Thell, R. ;
Schuh, M. ;
Koch, J. ;
Sessler, D. I. ;
Kurz, A. .
BRITISH JOURNAL OF ANAESTHESIA, 2009, 103 (02) :226-231
[6]   Development of a new method for the noninvasive measurement of deep body temperature without a heater [J].
Kitamura, Kei-Ichiro ;
Zhu, Xin ;
Chen, Wenxi ;
Nemoto, Tetsu .
MEDICAL ENGINEERING & PHYSICS, 2010, 32 (01) :1-6
[7]   Human Core Temperature Prediction for Heat-Injury Prevention [J].
Laxminarayan, Srinivas ;
Buller, Mark J. ;
Tharion, William J. ;
Reifman, Jaques .
IEEE JOURNAL OF BIOMEDICAL AND HEALTH INFORMATICS, 2015, 19 (03) :883-891
[8]   Circadian Timing in Cancer Treatments [J].
Levi, Francis ;
Okyar, Alper ;
Dulong, Sandrine ;
Innominato, Pasquale F. ;
Clairambault, Jean .
ANNUAL REVIEW OF PHARMACOLOGY AND TOXICOLOGY, 2010, 50 :377-421
[9]   IMPROVED PROBE FOR A DEEP BODY THERMOMETER [J].
NEMOTO, T ;
TOGAWA, T .
MEDICAL & BIOLOGICAL ENGINEERING & COMPUTING, 1988, 26 (04) :456-459
[10]   Cosinor analysis for temperature time series data of long duration [J].
Padhye, Nikhil S. ;
Hanneman, Sandra K. .
BIOLOGICAL RESEARCH FOR NURSING, 2007, 9 (01) :30-41