Literature DB >> 25530929

Towards Measuring Stress with Smartphones and Wearable Devices During Workday and Sleep.

Amir Muaremi1, Bert Arnrich1, Gerhard Tröster1.   

Abstract

Work should be a source of health, pride, and happiness, in the sense of enhancing motivation and strengthening personal development. Healthy and motivated employees perform better and remain loyal to the company for a longer time. But, when the person constantly experiences high workload over a longer period of time and is not able to recover, then work may lead to prolonged negative effects and might cause serious illnesses like chronic stress disease. In this work, we present a solution for assessing the stress experience of people, using features derived from smartphones and wearable chest belts. In particular, we use information from audio, physical activity, and communication data collected during workday and heart rate variability data collected at night during sleep to build multinomial logistic regression models. We evaluate our system in a real work environment and in daily-routine scenarios of 35 employees over a period of 4 months and apply the leave-one-day-out cross-validation method for each user individually to estimate the prediction accuracy. Using only smartphone features, we get an accuracy of 55 %, and using only heart rate variability features, we get an accuracy of 59 %. The combination of all features leads to a rate of 61 % for a three-stress level (low, moderate, and high perceived stress) classification problem.

Entities:  

Keywords:  Heart rate variability; Sleep; Smartphone; Stress; Wearable device

Year:  2013        PMID: 25530929      PMCID: PMC4269214          DOI: 10.1007/s12668-013-0089-2

Source DB:  PubMed          Journal:  Bionanoscience        ISSN: 2191-1630


  14 in total

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Journal:  Med Biol Eng Comput       Date:  2006-11-17       Impact factor: 2.602

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Journal:  BMJ       Date:  2006-01-20

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Authors:  Matteo Migliorini; Martin O Mendez; Anna M Bianchi
Journal:  Front Neuroeng       Date:  2012-01-10

9.  Dominant Lyapunov exponent and approximate entropy in heart rate variability during emotional visual elicitation.

Authors:  Gaetano Valenza; Paolo Allegrini; Antonio Lanatà; Enzo Pasquale Scilingo
Journal:  Front Neuroeng       Date:  2012-02-29

10.  Nonlinear Heart Rate Variability features for real-life stress detection. Case study: students under stress due to university examination.

Authors:  Paolo Melillo; Marcello Bracale; Leandro Pecchia
Journal:  Biomed Eng Online       Date:  2011-11-07       Impact factor: 2.819

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  34 in total

1.  Instrumental variable approach to estimating the scalar-on-function regression model with measurement error with application to energy expenditure assessment in childhood obesity.

Authors:  Carmen D Tekwe; Roger S Zoh; Miao Yang; Raymond J Carroll; Gilson Honvoh; David B Allison; Mark Benden; Lan Xue
Journal:  Stat Med       Date:  2019-06-20       Impact factor: 2.373

2.  Stress Detection via Keyboard Typing Behaviors by Using Smartphone Sensors and Machine Learning Techniques.

Authors:  Ensar Arif Sağbaş; Serdar Korukoglu; Serkan Balli
Journal:  J Med Syst       Date:  2020-02-17       Impact factor: 4.460

Review 3.  A survey of context recognition in surgery.

Authors:  Igor Pernek; Alois Ferscha
Journal:  Med Biol Eng Comput       Date:  2017-07-10       Impact factor: 2.602

4.  Fusion of heart rate variability and salivary cortisol for stress response identification based on adverse childhood experience.

Authors:  Noor Aimie-Salleh; M B Malarvili; Anna C Whittaker
Journal:  Med Biol Eng Comput       Date:  2019-02-07       Impact factor: 2.602

5.  The sensitivity of 38 heart rate variability measures to the addition of artifact in human and artificial 24-hr cardiac recordings.

Authors:  Nicolas J C Stapelberg; David L Neumann; David H K Shum; Harry McConnell; Ian Hamilton-Craig
Journal:  Ann Noninvasive Electrocardiol       Date:  2017-07-02       Impact factor: 1.468

6.  Stress among Portuguese Medical Students: the EuStress Solution.

Authors:  Eliana Silva; Joyce Aguiar; Luís Paulo Reis; Jorge Oliveira E Sá; Joaquim Gonçalves; Victor Carvalho
Journal:  J Med Syst       Date:  2020-01-02       Impact factor: 4.460

7.  Using Smartphone Survey Data and Machine Learning to Identify Situational and Contextual Risk Factors for HIV Risk Behavior Among Men Who Have Sex with Men Who Are Not on PrEP.

Authors:  Tyler B Wray; Xi Luo; Jun Ke; Ashley E Pérez; Daniel J Carr; Peter M Monti
Journal:  Prev Sci       Date:  2019-08

8.  Recognizing Academic Performance, Sleep Quality, Stress Level, and Mental Health using Personality Traits, Wearable Sensors and Mobile Phones.

Authors:  Akane Sano; Andrew J Phillips; Amy Z Yu; Andrew W McHill; Sara Taylor; Natasha Jaques; Charles A Czeisler; Elizabeth B Klerman; Rosalind W Picard
Journal:  Int Conf Wearable Implant Body Sens Netw       Date:  2015-10-19

9.  Continuous Detection of Physiological Stress with Commodity Hardware.

Authors:  Varun Mishra; Gunnar Pope; Sarah Lord; Stephanie Lewia; Byron Lowens; Kelly Caine; Sougata Sen; Ryan Halter; David Kotz
Journal:  ACM Trans Comput Healthc       Date:  2020-04

Review 10.  The Concept of Advanced Multi-Sensor Monitoring of Human Stress.

Authors:  Erik Vavrinsky; Viera Stopjakova; Martin Kopani; Helena Kosnacova
Journal:  Sensors (Basel)       Date:  2021-05-17       Impact factor: 3.576

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