Comparative Testing of Piezoelectric and Printed Strain Sensors in Characterization of Chewing

被引:0
|
作者
Farooq, Muhammad [1 ]
Sazonov, Edward [1 ]
机构
[1] Univ Alabama, Dept Elect & Comp Engn, Tuscaloosa, AL 35487 USA
关键词
EATING PATTERNS; OBESE; ASSOCIATION; MEAL;
D O I
10.1109/embc.2015.7320136
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
Results of recent research suggest that there may be a relationship between the eating rate and the total energy intake in a meal. The chewing rate is an indicator of the eating rate that may be measured by a sensor. A number of wearable solutions have been presented for the automatic detection of chewing, but little work has been done on counting chews automatically. With recent developments in printing technologies, it is possible to draw or print application specific sensors. This paper provides a comparison between an off the shelf piezoelectric strain sensor and a plotter drawn strain sensor for quantifying the number of chews for several food items. Piezoelectric strain sensor and plotter drawn strain sensors were able to achieve absolute mean error rates of 8.09 +/- 7.16% and 8.26 +/- 7.51% respectively for estimating the number of chew counts. This shows that a plotter drawn sensor can achieve similar performance while potentially providing an easily reconfigurable solution.
引用
收藏
页码:7538 / 7541
页数:4
相关论文
共 50 条
  • [41] Characterization of lithographically printed resistive strain gauges
    Hay, GI
    Evans, PSA
    Harrison, DJ
    Southee, D
    Simpson, G
    Harrey, PM
    IEEE SENSORS JOURNAL, 2005, 5 (05) : 864 - 871
  • [42] In House Development and Testing of Nanostructured Inks for Inkjet Printed Sensors
    Cristian, Macovei Stefan
    Alexandru, Trandabat
    Mihaela, Schreiner Cristina
    Costel, Donose
    2018 INTERNATIONAL CONFERENCE AND EXPOSITION ON ELECTRICAL AND POWER ENGINEERING (EPE), 2018, : 873 - 876
  • [43] Modeling and testing of PZT and PVDF piezoelectric wafer active sensors
    Lin, B.
    Giurgiutiu, V.
    SMART MATERIALS AND STRUCTURES, 2006, 15 (04) : 1085 - 1093
  • [44] An Integrated Testing Solution for Piezoelectric Sensors and Energy Harvesting Devices
    Pereira, Jose Dias
    Alves, Mario
    MEASUREMENT SCIENCE REVIEW, 2022, 22 (03) : 100 - 106
  • [45] Validation of Screen-Printed Electronic Skin Based on Piezoelectric Polymer Sensors
    Fares, Hoda
    Abbass, Yahya
    Valle, Maurizio
    Seminara, Lucia
    SENSORS, 2020, 20 (04)
  • [46] A facility for characterization and testing of hydrogen sensors
    Salyk, O.
    Castello, P.
    Harskamp, F.
    MEASUREMENT SCIENCE AND TECHNOLOGY, 2006, 17 (11) : 3033 - 3041
  • [47] Characterization of Printed Moisture Sensors in Packaging Surveillance Applications
    Unander, Tomas
    Nilsson, Hans-Erik
    IEEE SENSORS JOURNAL, 2009, 9 (08) : 922 - 928
  • [48] Characterization and Comparison of Biodegradable Printed Capacitive Humidity Sensors
    Wawrzynek, Emma
    Baumbauer, Carol
    Arias, Ana Claudia
    SENSORS, 2021, 21 (19)
  • [49] Characterization of improved tactile sensors using piezoelectric resonator
    Maezawa, M
    Kuroda, Y
    Ohta, R
    PROCEEDINGS OF THE 20TH ANNUAL INTERNATIONAL CONFERENCE OF THE IEEE ENGINEERING IN MEDICINE AND BIOLOGY SOCIETY, VOL 20, PTS 1-6: BIOMEDICAL ENGINEERING TOWARDS THE YEAR 2000 AND BEYOND, 1998, 20 : 1731 - 1734
  • [50] Characterization of Polymer Piezoelectric Sensors Plans for Optoacoustic Tomography
    Gonzalez, Martin
    Sorichetti, Patricio
    Santiago, Guillermo
    2014 IEEE BIENNIAL CONGRESS OF ARGENTINA (ARGENCON), 2014, : 281 - 285