Literature DB >> 34257310

Sensing leg movement enhances wearable monitoring of energy expenditure.

Patrick Slade1, Mykel J Kochenderfer2, Scott L Delp3,4, Steven H Collins3.   

Abstract

Physical inactivity is the fourth leading cause of global mortality. Health organizations have requested a tool to objectively measure physical activity. Respirometry and doubly labeled water accurately estimate energy expenditure, but are infeasible for everyday use. Smartwatches are portable, but have significant errors. Existing wearable methods poorly estimate time-varying activity, which comprises 40% of daily steps. Here, we present a Wearable System that estimates metabolic energy expenditure in real-time during common steady-state and time-varying activities with substantially lower error than state-of-the-art methods. We perform experiments to select sensors, collect training data, and validate the Wearable System with new subjects and new conditions for walking, running, stair climbing, and biking. The Wearable System uses inertial measurement units worn on the shank and thigh as they distinguish lower-limb activity better than wrist or trunk kinematics and converge more quickly than physiological signals. When evaluated with a diverse group of new subjects, the Wearable System has a cumulative error of 13% across common activities, significantly less than 42% for a smartwatch and 44% for an activity-specific smartwatch. This approach enables accurate physical activity monitoring which could enable new energy balance systems for weight management or large-scale activity monitoring.
© 2021. The Author(s).

Entities:  

Year:  2021        PMID: 34257310     DOI: 10.1038/s41467-021-24173-x

Source DB:  PubMed          Journal:  Nat Commun        ISSN: 2041-1723            Impact factor:   14.919


  30 in total

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Authors:  Edward L Melanson; Joan R Knoll; Melanie L Bell; William T Donahoo; J O Hill; Lana J Nysse; Lorraine Lanningham-Foster; John C Peters; James A Levine
Journal:  Prev Med       Date:  2004-08       Impact factor: 4.018

2.  Energy balance and its components: implications for body weight regulation.

Authors:  Kevin D Hall; Steven B Heymsfield; Joseph W Kemnitz; Samuel Klein; Dale A Schoeller; John R Speakman
Journal:  Am J Clin Nutr       Date:  2012-04       Impact factor: 7.045

3.  Monitoring energy metabolism with indirect calorimetry: instruments, interpretation, and clinical application.

Authors:  Kalman E Holdy
Journal:  Nutr Clin Pract       Date:  2004-10       Impact factor: 3.080

4.  Precision and accuracy of an ankle-worn accelerometer-based pedometer in step counting and energy expenditure.

Authors:  Randal C Foster; Lorraine M Lanningham-Foster; Chinmay Manohar; Shelly K McCrady; Lana J Nysse; Kenton R Kaufman; Denny J Padgett; James A Levine
Journal:  Prev Med       Date:  2005 Sep-Oct       Impact factor: 4.018

Review 5.  Physical activity level and health-related quality of life in the general adult population: a systematic review.

Authors:  Raphaël Bize; Jeffrey A Johnson; Ronald C Plotnikoff
Journal:  Prev Med       Date:  2007-07-21       Impact factor: 4.018

6.  Evaluating physiological signal salience for estimating metabolic energy cost from wearable sensors.

Authors:  Kimberly A Ingraham; Daniel P Ferris; C David Remy
Journal:  J Appl Physiol (1985)       Date:  2019-01-10

7.  Metabolic cost of daily activities and effect of mobility impairment in older adults.

Authors:  Jeffrey D Knaggs; Kelly A Larkin; Todd M Manini
Journal:  J Am Geriatr Soc       Date:  2011-10-22       Impact factor: 5.562

8.  A new predictive equation for resting energy expenditure in healthy individuals.

Authors:  M D Mifflin; S T St Jeor; L A Hill; B J Scott; S A Daugherty; Y O Koh
Journal:  Am J Clin Nutr       Date:  1990-02       Impact factor: 7.045

9.  A comparison of direct versus self-report measures for assessing physical activity in adults: a systematic review.

Authors:  Stéphanie A Prince; Kristi B Adamo; Meghan E Hamel; Jill Hardt; Sarah Connor Gorber; Mark Tremblay
Journal:  Int J Behav Nutr Phys Act       Date:  2008-11-06       Impact factor: 6.457

10.  Simulating Ideal Assistive Devices to Reduce the Metabolic Cost of Running.

Authors:  Thomas K Uchida; Ajay Seth; Soha Pouya; Christopher L Dembia; Jennifer L Hicks; Scott L Delp
Journal:  PLoS One       Date:  2016-09-22       Impact factor: 3.240

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  4 in total

1.  Wearable, wireless, multi-sensor device for monitoring tissue circulation after free-tissue transplantation: a multicentre clinical trial.

Authors:  Yoko Tomioka; Masaki Sekino; Jian Gu; Masakazu Kurita; Shuji Yamashita; Shimpei Miyamoto; Takuya Iida; Koji Kanayama; Kotaro Yoshimura; Masahiro Nakagawa; Satoshi Akazawa; Yu Kagaya; Kentaro Tanaka; Yuki Sunaga; Keiko Ueda; Takuya Kawahara; Yukiko Tahara; Mutsumi Okazaki
Journal:  Sci Rep       Date:  2022-10-03       Impact factor: 4.996

2.  The Validity of the Energy Expenditure Criteria Based on Open Source Code through two Inertial Sensors.

Authors:  Jaime Martín-Martín; Li Wang; Irene De-Torres; Adrian Escriche-Escuder; Manuel González-Sánchez; Antonio Muro-Culebras; Cristina Roldán-Jiménez; María Ruiz-Muñoz; Fermín Mayoral-Cleries; Attila Biró; Wen Tang; Borjanka Nikolova; Alfredo Salvatore; Antonio I Cuesta-Vargas
Journal:  Sensors (Basel)       Date:  2022-03-26       Impact factor: 3.576

3.  Personalizing exoskeleton assistance while walking in the real world.

Authors:  Patrick Slade; Mykel J Kochenderfer; Scott L Delp; Steven H Collins
Journal:  Nature       Date:  2022-10-12       Impact factor: 69.504

4.  An Open-Source and Wearable System for Measuring 3D Human Motion in Real-Time.

Authors:  Patrick Slade; Ayman Habib; Jennifer L Hicks; Scott L Delp
Journal:  IEEE Trans Biomed Eng       Date:  2022-01-21       Impact factor: 4.538

  4 in total

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