Healthcare Monitoring Using Low-Cost Sensors to Supplement and Replace Human Sensation: Does It Have Potential to Increase Independent Living and Prevent Disease?
暂无分享,去创建一个
[1] M. Palaniswami,et al. A Real-Time Tunable ECG Noise-Aware System for IoT-Enabled Devices , 2022, IEEE Sensors Journal.
[2] Yuedong Xu,et al. Device-Free Human Activity Recognition Based on Dual-Channel Transformer Using WiFi Signals , 2022, Wireless Communications and Mobile Computing.
[3] Jerry Q. Cheng,et al. A Review of IoT-Enabled Mobile Healthcare: Technologies, Challenges, and Future Trends , 2022, IEEE Internet of Things Journal.
[4] N. Soin,et al. Recent Progress in Printed Physical Sensing Electronics for Wearable Health-Monitoring Devices: A Review , 2022, IEEE Sensors Journal.
[5] S. Thakur,et al. Real-time prediction of smoking activity using machine learning based multi-class classification model , 2022, Multimedia Tools and Applications.
[6] Z. Halim,et al. The role of artificial intelligence and machine learning in wireless networks security: principle, practice and challenges , 2022, Artificial Intelligence Review.
[7] A. H. Yüzer,et al. A Novel Portable Real-Time Low-Cost Sleep Apnea Monitoring System based on the Global System for Mobile Communications (GSM) Network , 2022, Medical Biol. Eng. Comput..
[8] F. Bressi,et al. Wearable Device Based on a Flexible Conductive Textile for Knee Joint Movements Monitoring , 2021, IEEE Sensors Journal.
[9] Mohammad Monirujjaman Khan,et al. Research and Development of an IoT-Based Remote Asthma Patient Monitoring System , 2021, Journal of healthcare engineering.
[10] Sandra I. Woolley,et al. A Review of Wearable Multi-Wavelength Photoplethysmography , 2021, IEEE Reviews in Biomedical Engineering.
[11] Kathiravan Srinivasan,et al. Recent Advances on IoT-Assisted Wearable Sensor Systems for Healthcare Monitoring , 2021, Biosensors.
[12] Jun Liu,et al. Towards Accurate, Cost-Effective, Ultra-Low-Power and Non-Invasive Respiration Monitoring: A Reusable Wireless Wearable Sensor for an Off-the-Shelf KN95 Mask , 2021, Italian National Conference on Sensors.
[13] J. Nurmi,et al. Systematic Review on Machine-Learning Algorithms Used in Wearable-Based eHealth Data Analysis , 2021, IEEE Access.
[14] S. Conforto,et al. Non-Invasive Methods for PWV Measurement in Blood Vessel Stiffness Assessment , 2021, IEEE Reviews in Biomedical Engineering.
[15] Abu Ilius Faisal,et al. A Simple, Low-Cost Multi-Sensor-Based Smart Wearable Knee Monitoring System , 2021, IEEE Sensors Journal.
[16] Modris Greitans,et al. Wearable Sensor Clothing for Body Movement Measurement during Physical Activities in Healthcare , 2021, Sensors.
[17] Jiehua Yang,et al. Smart wearable monitoring system based on multi-type sensors for motion recognition , 2021 .
[18] Abdulmotaleb El Saddik,et al. Sitting Posture Recognition Using a Spiking Neural Network , 2021, IEEE Sensors Journal.
[19] M. Shimaoka,et al. How ICU Patient Severity Affects Communicative Interactions Between Healthcare Professionals: A Study Utilizing Wearable Sociometric Badges , 2020, Frontiers in Medicine.
[20] Dingyi Fang,et al. SitR: Sitting Posture Recognition Using RF Signals , 2020, IEEE Internet of Things Journal.
[21] Zhuofu Liu,et al. Review of Measuring Microenvironmental Changes at the Body–Seat Interface and the Relationship between Object Measurement and Subjective Evaluation , 2020, Sensors.
[22] M. Shimaoka,et al. Social Network Analysis of Intensive Care Unit Health Care Professionals Measured by Wearable Sociometric Badges: Longitudinal Observational Study , 2020, Journal of medical Internet research.
[23] Haeseok Jeong,et al. Developing and Evaluating a Mixed Sensor Smart Chair System for Real-Time Posture Classification: Combining Pressure and Distance Sensors , 2020, IEEE Journal of Biomedical and Health Informatics.
[24] Giancarlo Fortino,et al. Smart Cushion-Based Activity Recognition: Prompting Users to Maintain a Healthy Seated Posture , 2020, IEEE Systems, Man, and Cybernetics Magazine.
[25] Bengt Oelmann,et al. Power Estimation for Indoor Light Energy Harvesting Systems , 2020, IEEE Transactions on Instrumentation and Measurement.
[26] M. Teeter,et al. Machine Learning Predicts the Fall Risk of Total Hip Arthroplasty Patients Based on Wearable Sensor Instrumented Performance Tests. , 2020, The Journal of arthroplasty.
[27] T. Matsushita,et al. Plantar pressure sensors indicate women to have a significantly higher peak pressure on the hallux, toes, forefoot, and medial of the foot compared to men , 2020, Journal of Foot and Ankle Research.
[28] D. Aloini,et al. Silence is golden: the role of team coordination in health operations , 2020, International Journal of Operations & Production Management.
[29] Paolo Bonato,et al. A Simple Low-Cost Wearable Sensor for Long-Term Ambulatory Monitoring of Knee Joint Kinematics , 2020, IEEE Transactions on Biomedical Engineering.
[30] David J Hewson,et al. A Comparison of Four Approaches to Evaluate the Sit-to-Stand Movement , 2020, IEEE Transactions on Neural Systems and Rehabilitation Engineering.
[31] Seeram Ramakrishna,et al. Recent progress in flexible–wearable solar cells for self-powered electronic devices , 2020 .
[32] P. M. Pradhan,et al. Design of a Machine Learning-Assisted Wearable Accelerometer-Based Automated System for Studying the Effect of Dopaminergic Medicine on Gait Characteristics of Parkinson's Patients , 2020, Journal of healthcare engineering.
[33] Cristina E Davis,et al. Wearable Sensor System to Monitor Physical Activity and the Physiological Effects of Heat Exposure , 2020, Sensors.
[34] D. Aloini,et al. Patient satisfaction in emergency department: Unveiling complex interactions by wearable sensors , 2020, Journal of Business Research.
[35] Xuesong Mei,et al. Overview of Human Walking Induced Energy Harvesting Technologies and Its Possibility for Walking Robotics , 2019, Energies.
[36] Yingnan Sun,et al. Security and Privacy for the Internet of Medical Things Enabled Healthcare Systems: A Survey , 2019, IEEE Access.
[37] Sajjan G. Shiva,et al. IoMT-SAF: Internet of Medical Things Security Assessment Framework , 2019, Internet Things.
[38] Christian A. Clermont,et al. New Considerations for Wearable Technology Data: Changes in Running Biomechanics During a Marathon. , 2019, Journal of applied biomechanics.
[39] Noman Q Al-Naggar,et al. Design of a Remote Real-Time Monitoring System for Multiple Physiological Parameters Based on Smartphone , 2019, Journal of healthcare engineering.
[40] Takuma Yasuda,et al. Organic energy-harvesting devices achieving power conversion efficiencies over 20% under ambient indoor lighting , 2019, Journal of Materials Chemistry A.
[41] Bernd J Stetter,et al. Estimation of Knee Joint Forces in Sport Movements Using Wearable Sensors and Machine Learning , 2019, Sensors.
[42] Chen Liu,et al. Are you sitting right?-Sitting Posture Recognition Using RF Signals , 2019, 2019 IEEE Pacific Rim Conference on Communications, Computers and Signal Processing (PACRIM).
[43] Shahab Mehraeen,et al. Survey of energy scavenging for wearable and implantable devices , 2019, Energy.
[44] Bahram Tarvirdizadeh,et al. Fabrication of a portable device for stress monitoring using wearable sensors and soft computing algorithms , 2019, Neural Computing and Applications.
[45] A. Zengin,et al. Development and Validation of a Wearable Plantar Force Measurement Device , 2019, IEEE Sensors Journal.
[46] Shih-Ching Yeh,et al. Wearable Sensors Integrated with Virtual Reality: A Self-Guided Healthcare System Measuring Shoulder Joint Mobility for Frozen Shoulder , 2019, Journal of healthcare engineering.
[47] Shivam Tiwari,et al. Enhanced piezoelectric response in nanoclay induced electrospun PVDF nanofibers for energy harvesting , 2019, Energy.
[48] Johan Sidén,et al. Screen-Printed Piezoresistive Sensors for Monitoring Pressure Distribution in Wheelchair , 2019, IEEE Sensors Journal.
[49] Jianwei Li,et al. In-Depth Investigation into the Transient Humidity Response at the Body-Seat Interface on Initial Contact Using a Dual Temperature and Humidity Sensor , 2019, Sensors.
[50] Hui Li,et al. A Flexible, Lightweight, and Wearable Triboelectric Nanogenerator for Energy Harvesting and Self‐Powered Sensing , 2018, Advanced Materials Technologies.
[51] Mariangela Manti,et al. A Wearable Sensing Device for Monitoring Single Planes Neck Movements: Assessment of Its Performance , 2018, IEEE Sensors Journal.
[52] P. McCarthy,et al. Investigating thermal performance of different chairs at the user-seat interface by a temperature sensor array system while participants perform office work. , 2018, Journal of tissue viability.
[53] Doo-Soon Park,et al. Development of A Textile Capacitive Proximity Sensor and Gait Monitoring System for Smart Healthcare , 2018, Journal of Medical Systems.
[54] Agusti Solanas,et al. Security and Privacy Analysis of Mobile Health Applications: The Alarming State of Practice , 2018, IEEE Access.
[55] Shu-Yu Yang,et al. The effect of cushion properties on skin temperature and humidity at the body-support interface , 2018, Assistive technology : the official journal of RESNA.
[56] Nilanjan Dey,et al. Developing residential wireless sensor networks for ECG healthcare monitoring , 2017, IEEE Transactions on Consumer Electronics.
[57] René Mayrhofer,et al. Smartphone-Based Gait Recognition: From Authentication to Imitation , 2017, IEEE Transactions on Mobile Computing.
[58] M. Stephens,et al. Understanding the association between pressure ulcers and sitting in adults what does it mean for me and my carers? Seating guidelines for people, carers and health & social care professionals. , 2017, Journal of tissue viability.
[59] Ahmad H. Dehwah,et al. UD-WCMA: An energy estimation and forecast scheme for solar powered wireless sensor networks , 2017, J. Netw. Comput. Appl..
[60] Peter Vink,et al. Predicting passenger seat comfort and discomfort on the basis of human, context and seat characteristics: a literature review , 2017, Ergonomics.
[61] Le Chang,et al. Design and development of a thermal imaging system based on a temperature sensor array for temperature measurements of enclosed surfaces and its use at the body-seat interface , 2017 .
[62] Wan-Young Chung,et al. Wearable Glove-Type Driver Stress Detection Using a Motion Sensor , 2017, IEEE Transactions on Intelligent Transportation Systems.
[63] Ren-Hung Hwang,et al. An Intelligent Body Posture Analysis Model Using Multi-Sensors for Long-Term Physical Rehabilitation , 2017, Journal of Medical Systems.
[64] Koushik Maharatna,et al. Low-Complexity Framework for Movement Classification Using Body-Worn Sensors , 2017, IEEE Transactions on Very Large Scale Integration (VLSI) Systems.
[65] Giancarlo Fortino,et al. Posture Detection Based on Smart Cushion for Wheelchair Users , 2017, Sensors.
[66] Roger Gassert,et al. Multi-Day Recordings of Wearable Sensors Are Valid and Sensitive Measures of Function and Independence in Human Spinal Cord Injury. , 2017, Journal of neurotrauma.
[67] Lina Zhou,et al. Patients' Adoption of WSN-Based Smart Home Healthcare Systems: An Integrated Model of Facilitators and Barriers , 2017, IEEE Transactions on Professional Communication.
[68] William R Taylor,et al. Application of Machine Learning Approaches for Classifying Sitting Posture Based on Force and Acceleration Sensors , 2016, BioMed research international.
[69] Ngai-Man Cheung,et al. Smartphone and Mobile Image Processing for Assisted Living: Health-monitoring apps powered by advanced mobile imaging algorithms , 2016, IEEE Signal Processing Magazine.
[70] Gang Zhou,et al. Toward Sensor-Based Random Number Generation for Mobile and IoT Devices , 2016, IEEE Internet of Things Journal.
[71] Zhuofu Liu,et al. A methodology using in-chair movements as an objective measure of discomfort for the purpose of statistically distinguishing between similar seat surfaces. , 2016, Applied ergonomics.
[72] Nasser Kehtarnavaz,et al. Inertial Measurement Unit-Based Wearable Computers for Assisted Living Applications: A signal processing perspective , 2016, IEEE Signal Processing Magazine.
[73] Mauro Serpelloni,et al. Autonomous Wearable System for Vital Signs Measurement With Energy-Harvesting Module , 2016, IEEE Transactions on Instrumentation and Measurement.
[74] Josip Car,et al. Unaddressed privacy risks in accredited health and wellness apps: a cross-sectional systematic assessment , 2015, BMC Medicine.
[75] Jesus Boticario,et al. Development of an Inexpensive Sensor Network for Recognition of Sitting Posture , 2015, Int. J. Distributed Sens. Networks.
[76] William R Taylor,et al. Are pressure measurements effective in the assessment of office chair comfort/discomfort? A review. , 2015, Applied ergonomics.
[77] Ali Sunyaev,et al. Availability and quality of mobile health app privacy policies , 2015, J. Am. Medical Informatics Assoc..
[78] Tobias Dehling,et al. Exploring the Far Side of Mobile Health: Information Security and Privacy of Mobile Health Apps on iOS and Android , 2015, JMIR mHealth and uHealth.
[79] Ming-Chun Huang,et al. Unobtrusive Sleep Stage Identification Using a Pressure-Sensitive Bed Sheet , 2014, IEEE Sensors Journal.
[80] W. Hanke,et al. Effects of occupational exposure - is there a link between exposure based on an occupational questionnaire and semen quality? , 2014, Systems biology in reproductive medicine.
[81] John A. Stankovic,et al. Research Directions for the Internet of Things , 2014, IEEE Internet of Things Journal.
[82] Ming-Chun Huang,et al. eCushion: A Textile Pressure Sensor Array Design and Calibration for Sitting Posture Analysis , 2013, IEEE Sensors Journal.
[83] Yunjian Ge,et al. HMM-Based Human Fall Detection and Prediction Method Using Tri-Axial Accelerometer , 2013, IEEE Sensors Journal.
[84] Mikhail Khitrov,et al. Talking passwords: voice biometrics for data access and security , 2013 .
[85] James McNames,et al. Shoulder and Elbow Joint Angle Tracking With Inertial Sensors , 2012, IEEE Transactions on Biomedical Engineering.
[86] E. Zimlichman,et al. Using Continuous Motion Monitoring Technology to Determine Patient’s Risk for Development of Pressure Ulcers , 2011, Journal of patient safety.
[87] Paolo Barsocchi,et al. Limb Movements Classification Using Wearable Wireless Transceivers , 2011, IEEE Transactions on Information Technology in Biomedicine.
[88] Monique Frize,et al. Measurement of Torso Movement With Delay Mapping Using an Unobtrusive Pressure-Sensor Array , 2011, IEEE Transactions on Instrumentation and Measurement.
[89] Toshiyo Tamura,et al. Detection of anticipatory postural adjustments prior to gait initiation using inertial wearable sensors , 2011, Journal of NeuroEngineering and Rehabilitation.
[90] Jan Meyer,et al. Design and Modeling of a Textile Pressure Sensor for Sitting Posture Classification , 2010, IEEE Sensors Journal.
[91] Huosheng Hu,et al. Reducing Drifts in the Inertial Measurements of Wrist and Elbow Positions , 2010, IEEE Transactions on Instrumentation and Measurement.
[92] Masahiro Todoh,et al. Gait posture estimation using wearable acceleration and gyro sensors. , 2009, Journal of biomechanics.
[93] Marimuthu Palaniswami,et al. Computational Intelligence in Gait Research: A Perspective on Current Applications and Future Challenges , 2009, IEEE Transactions on Information Technology in Biomedicine.
[94] Man-Sang Wong,et al. Measurement of Postural Change in Trunk Movements Using Three Sensor Modules , 2009, IEEE Transactions on Instrumentation and Measurement.
[95] Tulin Gunduz Cengiz,et al. The effects of ramie blended car seat covers on thermal comfort during road trials , 2009 .
[96] Mani B. Srivastava,et al. Power management in energy harvesting sensor networks , 2007, TECS.
[97] M. de Looze,et al. Please Scroll down for Article Ergonomics Sitting Comfort and Discomfort and the Relationships with Objective Measures Sitting Comfort and Discomfort and the Relationships with Objective Measures , 2022 .
[98] A. Louche,et al. First order Markov chain model for generating synthetic “typical days” series of global irradiation in order to design photovoltaic stand alone systems , 2001 .
[99] S. Behera,et al. Chipless RFID Sensors for IoT-Based Healthcare Applications: A Review of State of the Art , 2022, IEEE Transactions on Instrumentation and Measurement.
[100] Sotirios K Goudos,et al. A Comprehensive Review on Artificial Intelligence/Machine Learning Algorithms for Empowering the Future IoT Toward 6G Era , 2022, IEEE Access.
[101] Amira S. Ashour,et al. Prediction of Harvestable Energy for Self-Powered Wearable Healthcare Devices: Filling a Gap , 2020, IEEE Access.
[102] Guanglin Li,et al. Fabrication, Structure Characterization, and Performance Testing of Piezoelectret-Film Sensors for Recording Body Motion , 2018, IEEE Sensors Journal.
[103] Benny P. L. Lo,et al. Random Number Generation Using Inertial Measurement Unit Signals for On-Body IoT Devices , 2018, IoT 2018.
[104] Angélica Muñoz-Meléndez,et al. Variability Analysis of Therapeutic Movements using Wearable Inertial Sensors , 2016, Journal of Medical Systems.
[105] James S. Martin,et al. Everyday sitting behavior of full-time wheelchair users. , 2016, Journal of rehabilitation research and development.
[106] Kazuhiro Watanabe,et al. Respiration and body movement analysis during sleep in bed using hetero-core fiber optic pressure sensors without constraint to human activity. , 2011, Journal of biomedical optics.
[107] Nikolaos G. Bourbakis,et al. A Survey on Wearable Sensor-Based Systems for Health Monitoring and Prognosis , 2010, IEEE Transactions on Systems, Man, and Cybernetics, Part C (Applications and Reviews).
[108] Nigel H. Lovell,et al. Implementation of a real-time human movement classifier using a triaxial accelerometer for ambulatory monitoring , 2006, IEEE Transactions on Information Technology in Biomedicine.
[109] Jeffrey O. Kephart,et al. The Vision of Autonomic Computing , 2003, Computer.
[110] S. Eckstein. Ethical principles for medical research involving human subjects. , 2001, European journal of emergency medicine : official journal of the European Society for Emergency Medicine.