wireless data transfer, software porting and real-time
visualization of pressure mapping are outstanding
features of this device in relation to other self-
constructed and commercial systems. However, the
sensor is sensitive to temperature and it is necessary
to disassemble the data acquisition module to change
the sensor, e.g., to use a sensor with other size.
ACKNOWLEDGEMENTS
We thank the support by grants from São Paulo
Research Foundation (FAPESP) and National
Council for Scientific and Technological
Development (CNPq).
REFERENCES
Bellizzi, M., Rizzo, G., Bellizzi, G., Ranieri, M., Fanelli,
M., Megna, G. and Procoli, U. (2011), Electronic
baropodometry in patients affected by ocular torticollis,
Strabismus, vol. 19, pp. 21–25.
Castro, M. C. and Cliquet, A. Jr. (2000), Artificial
sensorimotor integration in spinal cord injured subjects
through neuromuscular and electrotactile stimulation,
Artif Organs, vol. 24, pp. 710–717.
Chapman, J. D., Preece, S., Braunstein, B., Höhne, A.,
Nester, C. J., Brueggemann, P. and Hutchins, S. (2013),
Effect of rocker shoe design features on forefoot plantar
pressures in people with and without diabetes, Clin
Biomech, vol. 28, pp. 679–685.
Crea, S., Donati, M., De Rossi, S. M., Oddo, C. M. and
Vitiello, N. (2014), A wireless flexible sensorized
insole for gait analysis, Sensors, vol. 14, pp. 1073–
1093.
Flexiforce® Force Sensor Design & Integration Guide,
Tekscan, Inc., 2015.
Girard, O., Eicher, F., Micallef, J. P. and Millet, G. P.
(2010), Plantar pressures in the tennis serve, J Sports
Sci, vol. 28, pp. 873–880.
Hills, A. P., Hennig, E. M., McDonald, M. and Bar-Or, O.
(2001), Plantar pressure differences between obese and
nonobese, Int J Obes Relat Metab Disord, vol. 25, pp.
1674–1679.
Hsiao, H., Guan, J. and Weatherly, M. (2002), Accuracy
and precision of two in-shoe pressure measurement
systems, Ergonomics, vol. 2, pp. 537–555.
Keijsers, N. (2013), The Science of Footwear, R. S.
Goonetilleke, Ed. Boca Raton, USA: CRC Press.
Kaercher, C. W., Genro, V. K., Souza, C. A., Alfonsin, M.
Berton, G. and Filho J. S. C. (2011), Baropodometry on
women suffering from chronic pelvic pain – a cross-
sectional study, BMC Womens Health, vol. 11.
Kalamdani, A., Messom, C. and Siegel, M. (2006), Tactile
sensing by the sole of the foot part II: calibration and
real-time processing, Proceedings of 3rd International
Conference on Autonomous Robots and Agents.
Koch, M., Lunde, L. K., Ernst, M., Knardahl, S. and
Veiersted, K. B. (2016), Validity and reliability of
pressure-measurement insoles for vertical ground
reaction force assessment in field situations, Applied
Ergonomics, vol. 53, pp. 44–51.
Ledoux, W. R., Shofer, J. B., Cowley, M. S., Ahroni, J. H.,
Cohen, V. and Boyko, E. J. (2013), Diabetic foot ulcer
incidence in relation to plantar pressure magnitude and
measurement location, J Diabetes Complications, vol.
27, pp. 621–626.
McPoil, T.G., Cornwall, M.W. and Yamada, W. (1995), A
comparison of two in-shoe plantar pressure
measurement systems, Lower Extremity, vol. 2, pp. 95–
103.
Medical Sensor 3000 data sheet, Tekscan, Inc., Boston,
USA.
Melvin, J. M. A., Preece, S., Nester, C. J., and Howard, D.
(2014), An investigation into plantar pressure
measurement protocols for footwear research, Gait
Posture, vol. 40, pp. 682–687.
Motha, L., Kim, J. and Kim, W. S. (2015) Instrumented
rubber insole for plantar pressure sensing, Organic
Electronics, vol. 23, pp. 82–86.
Podoloff, R. M., Benjamin, M. H., Winters, J. and Golden,
R. F. (1991), Flexible tactile sensor for measuring foot
pressure distributions and for gaskets, U.S. Patent 5
033 291.
Price, C., Parker, D. and Nester, N. (2016), Validity and
repeatability of three in-shoe pressure measurement
systems, Gait Posture, vol. 46, pp. 69–74.
Robinson, C. C., Balbinot, L. F., Silva, M. F., Achaval, M.
and Zaro, M. A. (2013), Plantar pressure distribution
patterns of individuals with prediabetes in comparison
with healthy individuals and individuals with diabetes,
J Diabetes Sci Technol, vol. 7, pp. 1113 – 1121.
Saito, M., Nakajima, K., Takano, C., Ohta, Y., Sugimoto,
C., Ezoe, R., Sasaki, K., Hosaka, H., Ifukube, T., Ino,
S. and Yamashita, K. (2011), An in-shoe device to
measure plantar pressure during daily human activity,
Med Eng Phys, vol. 33, pp. 638–645.
Smith, B. T., Coiro, D. J., Finson, R., Betz, R. R. and
McCarthy, J. (2002), Evaluation of force-sensing
resistors for gait event detection to trigger electrical
stimulation to improve walking in the child with
cerebral palsy, IEEE Trans Neural Syst Rehabil Eng,
vol. 10, pp. 22–29.
Tan, A. M., Fuss, F. K., Weizman, Y., Woudstra, Y. and
Troynikov, O. (2015), Design of low cost smart insole
for real time measurement of plantar pressure, Procedia
Technology, vol. 20, pp. 117–122.
Test & Measurement - Impossible Insights Made Possible
Through Minimally Invasive Force & Pressure
Measurement, Tekscan, Inc., 2014.
Woodburn J. and Helliwell, P. S. (1996), Observations on
the F-Scan in-shoe pressure measuring system, Clin
Biomech, vol. 11, pp. 301–304.
Yaniger, S. I. (1991), Force sensing resistors: a review of
the technology, Electro. Int., pp. 666–668.