DocumentCode :
2977824
Title :
Accelerometer-based methods for energy expenditure using the smartphone
Author :
Carneiro, Susana ; Silva, Joana ; Aguiar, Bruno ; Rocha, Tiago ; Sousa, Ines ; Montanha, Tiago ; Ribeiro, Jose
Author_Institution :
Fraunhofer Portugal AICOS, Porto, Portugal
fYear :
2015
fDate :
7-9 May 2015
Firstpage :
151
Lastpage :
156
Abstract :
Quantifying the energy expended during physical activity is an important metric to evaluate the quality and progress of individual training. There are several methods to estimate the energy expenditure using accelerometers, the most common are based on calculating counts per minute from the accelerometer signal to determinate the activity intensity in terms of metabolic equivalents (METs). This paper compares three methods to estimate the energy expenditure, the first has been proposed in a previous study and the last two are based on linear regressions derived from the data collected, one using speed, and the other using the feature root mean square (fRMS) of the magnitude of the accelerometer signal. These models were compared with indirect calorimetry outputs of energy expenditure during an incremental speed treadmill protocol. No statistically significant differences (p>0.05) were found between the indirect calorimetry and the model derived using the RMS feature, obtaining a normalized error of 20% for the METs estimation. In conclusion, this was found to be the most suitable method to estimate the energy expenditure from accelerometer data collected using a smartphone placed in the belt.
Keywords :
accelerometers; biochemistry; biomechanics; biomedical measurement; body sensor networks; calorimetry; mean square error methods; regression analysis; smart phones; MET estimation; RMS feature; accelerometer data; accelerometer signal magnitude; accelerometer-based method; activity intensity; belt; energy expenditure; fRMS; feature root mean square; incremental speed treadmill protocol; indirect calorimetry outputs; individual training; linear regressions; metabolic equivalent; normalized error; physical activity; smartphone; Accelerometers; Calorimetry; Estimation; Legged locomotion; Mathematical model; Radiation detectors; Standards;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Medical Measurements and Applications (MeMeA), 2015 IEEE International Symposium on
Conference_Location :
Turin
Type :
conf
DOI :
10.1109/MeMeA.2015.7145190
Filename :
7145190
Link To Document :
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