Literature DB >> 29176316

Toward Using a Smartwatch to Monitor Frailty in a Hospital Setting: Using a Single Wrist-Wearable Sensor to Assess Frailty in Bedbound Inpatients.

Hyoki Lee1, Bellal Joseph, Ana Enriquez, Bijan Najafi.   

Abstract

BACKGROUND: While various objective tools have been validated for assessing physical frailty in the geriatric population, these are often unsuitable for busy clinics and mobility-impaired patients. Recently, we have developed a frailty meter (FM) using two wearable sensors, which allows capturing key frailty phenotypes (weakness, slowness, and exhaustion), by testing 20-s rapid elbow flexion-extension test.
OBJECTIVE: In this study, we proposed an enhanced automated algorithm to identify frailty using a single wrist-worn sensor.
METHODS: The data collected from 100 geriatric inpatients (age: 78.9 ± 9.1 years, 49% frail) were reanalyzed to validate the new algorithm. The frailty status of the participants was determined using a validated modified frailty index. Different FM phenotypes (31 features) including velocity of elbow rotation, decline in velocity of elbow rotation over 20 s, range of motion, etc. were extracted. A regression model, bootstrap with 2,000 iterations, and recursive feature elimination technique were used for optimizing the FM parameters and identifying frailty using a single wrist-worn sensor.
RESULTS: A strong agreement was observed between two-sensor and wrist-worn sensor configuration (r = 0.87, p < 0.001). Results suggest that the wrist-worn FM with no demographic information still yields a high accuracy of 80.0% (95% CI: 79.7-80.3%) and an area under the curve of 87.7% (95% CI: 87.4-87.9%) to identify frailty status. Results are comparable with two-sensor configuration, where the observed accuracy and area under the curve were 80.6% (95% CI: 80.4-80.9%) and 87.4% (95% CI: 87.1-87.6%), respectively.
CONCLUSION: The simplicity of FM may open new avenues to integrate wearable technology and mobile health to capture frailty status in a busy hospital setting. Furthermore, the reduction of needed sensors to a single wrist-worn sensor allows deployment of the proposed algorithm in the form of a smartwatch application. From the application standpoint, the proposed FM is superior to traditional physical frailty-screening tools in which the walking test is a key frailty phenotype, and thus they cannot be used for bedbound patients or in busy clinics where administration of gait test as a part of routine assessment is impractical.
© 2017 S. Karger AG, Basel.

Entities:  

Keywords:  Frailty meter; Frailty phenotype; Geriatric population; Mobile health; Wearable technology

Mesh:

Year:  2017        PMID: 29176316      PMCID: PMC5970017          DOI: 10.1159/000484241

Source DB:  PubMed          Journal:  Gerontology        ISSN: 0304-324X            Impact factor:   5.140


  34 in total

1.  Frailty defined by deficit accumulation and geriatric medicine defined by frailty.

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2.  The frailty phenotype and the frailty index: different instruments for different purposes.

Authors:  Matteo Cesari; Giovanni Gambassi; Gabor Abellan van Kan; Bruno Vellas
Journal:  Age Ageing       Date:  2013-10-16       Impact factor: 10.668

3.  Smart watch accelerometry for analysis and diagnosis of tremor.

Authors:  Daryl J Wile; Ranjit Ranawaya; Zelma H T Kiss
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4.  A Smartwatch-Based Assistance System for the Elderly Performing Fall Detection, Unusual Inactivity Recognition and Medication Reminding.

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Journal:  Stud Health Technol Inform       Date:  2016

Review 5.  Frailty in the older surgical patient: a review.

Authors:  Judith S L Partridge; Danielle Harari; Jugdeep K Dhesi
Journal:  Age Ageing       Date:  2012-03       Impact factor: 10.668

6.  Simple frailty score predicts postoperative complications across surgical specialties.

Authors:  Thomas N Robinson; Daniel S Wu; Lauren Pointer; Christina L Dunn; Joseph C Cleveland; Marc Moss
Journal:  Am J Surg       Date:  2013-07-20       Impact factor: 2.565

7.  Estimation of Center of Mass Trajectory using Wearable Sensors during Golf Swing.

Authors:  Bijan Najafi; Jacqueline Lee-Eng; James S Wrobel; Ruben Goebel
Journal:  J Sports Sci Med       Date:  2015-05-08       Impact factor: 2.988

Review 8.  Frailty and technology: a systematic review of gait analysis in those with frailty.

Authors:  Michael Schwenk; Carol Howe; Ahlam Saleh; Jane Mohler; Gurtej Grewal; David Armstrong; Bijan Najafi
Journal:  Gerontology       Date:  2013-08-15       Impact factor: 5.140

9.  Predictability of frailty index and its components on mortality in older adults in China.

Authors:  Fang Yang; Danan Gu
Journal:  BMC Geriatr       Date:  2016-07-25       Impact factor: 3.921

10.  Automatic Fall Detection System Based on the Combined Use of a Smartphone and a Smartwatch.

Authors:  Eduardo Casilari; Miguel A Oviedo-Jiménez
Journal:  PLoS One       Date:  2015-11-11       Impact factor: 3.240

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Authors:  He Zhou; Javad Razjouyan; Debopriyo Halder; Anand D Naik; Mark E Kunik; Bijan Najafi
Journal:  Gerontology       Date:  2018-10-25       Impact factor: 5.140

2.  Digital Biomarkers of Cognitive Frailty: The Value of Detailed Gait Assessment Beyond Gait Speed.

Authors:  He Zhou; Catherine Park; Mohammad Shahbazi; Michele K York; Mark E Kunik; Aanand D Naik; Bijan Najafi
Journal:  Gerontology       Date:  2021-05-10       Impact factor: 5.597

3.  Toward Remote Assessment of Physical Frailty Using Sensor-based Sit-to-stand Test.

Authors:  Catherine Park; Amir Sharafkhaneh; Mon S Bryant; Christina Nguyen; Ilse Torres; Bijan Najafi
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4.  Wearable Sensors and the Assessment of Frailty among Vulnerable Older Adults: An Observational Cohort Study.

Authors:  Javad Razjouyan; Aanand D Naik; Molly J Horstman; Mark E Kunik; Mona Amirmazaheri; He Zhou; Amir Sharafkhaneh; Bijan Najafi
Journal:  Sensors (Basel)       Date:  2018-04-26       Impact factor: 3.576

5.  A Microservices e-Health System for Ecological Frailty Assessment Using Wearables.

Authors:  Francisco M Garcia-Moreno; Maria Bermudez-Edo; José Luis Garrido; Estefanía Rodríguez-García; José Manuel Pérez-Mármol; María José Rodríguez-Fórtiz
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6.  Toward Smart Footwear to Track Frailty Phenotypes-Using Propulsion Performance to Determine Frailty.

Authors:  Hadi Rahemi; Hung Nguyen; Hyoki Lee; Bijan Najafi
Journal:  Sensors (Basel)       Date:  2018-06-01       Impact factor: 3.576

7.  Digital Biomarker Representing Frailty Phenotypes: The Use of Machine Learning and Sensor-Based Sit-to-Stand Test.

Authors:  Catherine Park; Ramkinker Mishra; Amir Sharafkhaneh; Mon S Bryant; Christina Nguyen; Ilse Torres; Aanand D Naik; Bijan Najafi
Journal:  Sensors (Basel)       Date:  2021-05-08       Impact factor: 3.576

Review 8.  How wearable sensors have been utilised to evaluate frailty in older adults: a systematic review.

Authors:  Grainne Vavasour; Oonagh M Giggins; Julie Doyle; Daniel Kelly
Journal:  J Neuroeng Rehabil       Date:  2021-07-08       Impact factor: 4.262

9.  A Wrist-Worn Sensor-Derived Frailty Index Based on an Upper-Extremity Functional Test in Predicting Functional Mobility in Older Adults.

Authors:  Gu Eon Kang; Aanand D Naik; Ravi K Ghanta; Todd K Rosengart; Bijan Najafi
Journal:  Gerontology       Date:  2021-04-01       Impact factor: 5.597

10.  Toward Using Wearables to Remotely Monitor Cognitive Frailty in Community-Living Older Adults: An Observational Study.

Authors:  Javad Razjouyan; Bijan Najafi; Molly Horstman; Amir Sharafkhaneh; Mona Amirmazaheri; He Zhou; Mark E Kunik; Aanand Naik
Journal:  Sensors (Basel)       Date:  2020-04-14       Impact factor: 3.576

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