Next Steps in Wearable Technology and Community Ambulation in Multiple Sclerosis
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Ryan S. McGinnis | Jacob J. Sosnoff | Reed D. Gurchiek | Brett M. Meyer | J. Sosnoff | R. McGinnis | M. Frechette | Lindsey J. Tulipani | Mikaela L. Frechette | R. Mcginnis
[1] B. Galna,et al. Free-living gait characteristics in ageing and Parkinson’s disease: impact of environment and ambulatory bout length , 2016, Journal of NeuroEngineering and Rehabilitation.
[2] Jill M van der Meulen,et al. Free-living and laboratory gait characteristics in patients with multiple sclerosis , 2018, PloS one.
[3] Wim G. M. Janssen,et al. Accelerometric assessment of different dimensions of natural walking during the first year after stroke: Recovery of amount, distribution, quality and speed of walking. , 2015, Journal of rehabilitation medicine.
[4] B. Najafi,et al. Objective fall risk detection in stroke survivors using wearable sensor technology: a feasibility study , 2016, Topics in stroke rehabilitation.
[5] B. Phillips,et al. Gait and balance impairment in early multiple sclerosis in the absence of clinical disability , 2006, Multiple sclerosis.
[6] P Tamburini,et al. Towards an objective assessment of motor function in sub-acute stroke patients: Relationship between clinical rating scales and instrumental gait stability indexes. , 2018, Gait & posture.
[7] Tao Liu,et al. Estimation of Step Length and Gait Asymmetry Using Wearable Inertial Sensors , 2018, IEEE Sensors Journal.
[8] R J Full,et al. How animals move: an integrative view. , 2000, Science.
[9] Karen V. Lomond,et al. Detection of postural sway abnormalities by wireless inertial sensors in minimally disabled patients with multiple sclerosis: a case–control study , 2015, Journal of NeuroEngineering and Rehabilitation.
[10] Shyamal Patel,et al. A wearable computing platform for developing cloud-based machine learning models for health monitoring applications , 2016, 2016 38th Annual International Conference of the IEEE Engineering in Medicine and Biology Society (EMBC).
[11] Frances Lynn,et al. Timed 25-Foot Walk , 2013, Neurology.
[12] Robert W Motl,et al. Motion sensors in multiple sclerosis: Narrative review and update of applications , 2017, Expert review of medical devices.
[13] R. Motl,et al. Commercially available accelerometry as an ecologically valid measure of ambulation in individuals with multiple sclerosis , 2012, Expert review of neurotherapeutics.
[14] Jochen Klucken,et al. Sensor‐based gait analysis in atypical parkinsonian disorders , 2018, Brain and behavior.
[15] N. Larocca. Impact of Walking Impairment in Multiple Sclerosis , 2011, The patient.
[16] Yike Guo,et al. Remote Monitoring in the Home Validates Clinical Gait Measures for Multiple Sclerosis , 2018, Front. Neurol..
[17] Ciprian M. Crainiceanu,et al. STRIDE VARIABILITY MEASURES DERIVED FROM WRIST AND HIP-WORN ACCELEROMETERS , 2017 .
[18] R. Motl,et al. Quantifying gait abnormalities in persons with multiple sclerosis with minimal disability. , 2012, Gait & posture.
[19] Ryan S McGinnis,et al. Monitoring gait in multiple sclerosis with novel wearable motion sensors , 2016, PloS one.
[20] Shuozhi Yang,et al. Estimation of spatio-temporal parameters for post-stroke hemiparetic gait using inertial sensors. , 2013, Gait & posture.
[21] Shyamal Patel,et al. Assessment of Postural Sway in Individuals with Multiple Sclerosis Using a Novel Wearable Inertial Sensor , 2018, Digital Biomarkers.
[22] Susan L. Kasser,et al. Symptom variability, affect and physical activity in ambulatory persons with multiple sclerosis: Understanding patterns and time-bound relationships. , 2017, Disability and health journal.
[23] A Thompson,et al. The Multiple Sclerosis Impact Scale (MSIS-29): a new patient-based outcome measure. , 2001, Brain : a journal of neurology.
[24] Morgan K. Boes,et al. Does a waist-worn ActiGraph accelerometer quantify community ambulation in persons with multiple sclerosis? , 2012, Journal of rehabilitation research and development.
[25] Fay B. Horak,et al. Accelerometry Reveals Differences in Gait Variability Between Patients with Multiple Sclerosis and Healthy Controls , 2012, Annals of Biomedical Engineering.
[26] E. Dugan,et al. Physiological complexity of gait between regular and non-exercisers with Parkinson's disease. , 2019, Clinical biomechanics.
[27] M. Cameron,et al. Balance, gait, and falls in multiple sclerosis. , 2018, Handbook of clinical neurology.
[28] Dina Brooks,et al. A Novel Approach to Ambulatory Monitoring , 2011, Neurorehabilitation and neural repair.
[29] A. Kalron. Gait variability across the disability spectrum in people with multiple sclerosis , 2016, Journal of the Neurological Sciences.
[30] Shyamal Patel,et al. Skin mounted accelerometer system for measuring knee range of motion , 2016, 2016 38th Annual International Conference of the IEEE Engineering in Medicine and Biology Society (EMBC).
[31] M. Hagströmer,et al. Accelerometer Cut Points for Physical Activity Assessment of Older Adults with Parkinson’s Disease , 2015, PloS one.
[32] F. Horak,et al. Body-worn motion sensors detect balance and gait deficits in people with multiple sclerosis who have normal walking speed. , 2012, Gait & posture.
[33] Jeffrey M. Hausdorff,et al. Is every-day walking in older adults more analogous to dual-task walking or to usual walking? Elucidating the gaps between gait performance in the lab and during 24/7 monitoring , 2019, European Review of Aging and Physical Activity.
[34] V. de Groot,et al. Effect of time of day on walking capacity and self-reported fatigue in persons with multiple sclerosis: a multi-center trial , 2012, Multiple sclerosis.
[35] Alan Godfrey,et al. Comprehensive measurement of stroke gait characteristics with a single accelerometer in the laboratory and community: a feasibility, validity and reliability study , 2017, Journal of NeuroEngineering and Rehabilitation.
[36] Jeffrey A Cohen,et al. Validity of the timed 25-foot walk as an ambulatory performance outcome measure for multiple sclerosis , 2017, Multiple sclerosis.
[37] Robert W Motl,et al. Gait variability and disability in multiple sclerosis. , 2013, Gait & posture.
[38] Matthew A D Brodie,et al. Gyroscopic corrections improve wearable sensor data prior to measuring dynamic sway in the gait of people with Multiple Sclerosis , 2016, Computer methods in biomechanics and biomedical engineering.
[39] A. Achiron,et al. Gait analysis in multiple sclerosis: characterization of temporal-spatial parameters using GAITRite functional ambulation system. , 2009, Gait & posture.
[40] Amir Muaremi,et al. Gait Symmetry Assessment with a Low Back 3D Accelerometer in Post-Stroke Patients , 2018, Sensors.
[41] Jeffrey A. Cohen,et al. Evaluation of the six-minute walk in multiple sclerosis subjects and healthy controls , 2008, Multiple sclerosis.
[42] Zhelong Wang,et al. Body Sensor Network-Based Gait Quality Assessment for Clinical Decision-Support via Multi-Sensor Fusion , 2019, IEEE Access.
[43] Edward D Lemaire,et al. Analysis of dual-task elderly gait in fallers and non-fallers using wearable sensors. , 2016, Journal of biomechanics.
[44] V. de Groot,et al. Which walking capacity tests to use in multiple sclerosis? A multicentre study providing the basis for a core set , 2012, Multiple sclerosis.
[45] R. Motl,et al. Neurological disability and its association with walking impairment in multiple sclerosis: brief review. , 2014, Neurodegenerative disease management.
[46] L. Shammas,et al. Home-based system for physical activity monitoring in patients with multiple sclerosis (Pilot study) , 2014, Biomedical engineering online.
[47] Claudia Mazzà,et al. Reliability of gait variability assessment in older individuals during a six-minute walk test. , 2015, Journal of biomechanics.
[48] Trina Mitchell,et al. Gait and trunk kinematics during prolonged turning in Parkinson's disease with freezing of gait. , 2019, Parkinsonism & related disorders.
[49] J. Kurths,et al. Entropy-based complexity measures for gait data of patients with Parkinson's disease. , 2016, Chaos.
[50] R. Motl,et al. Accuracy of the actibelt(®) accelerometer for measuring walking speed in a controlled environment among persons with multiple sclerosis. , 2012, Gait & posture.
[51] R. Motl,et al. Possible clinical outcome measures for clinical trials in patients with multiple sclerosis , 2010, Therapeutic advances in neurological disorders.
[52] C. Detrembleur,et al. Gait Complexity and Regularity Are Differently Modulated by Treadmill Walking in Parkinson's Disease and Healthy Population , 2018, Front. Physiol..
[53] Jordan J. Craig,et al. Altered visual and somatosensory feedback affects gait stability in persons with multiple sclerosis. , 2019, Human movement science.
[54] R. Motl,et al. Walking impairment in patients with multiple sclerosis: exercise training as a treatment option , 2010, Neuropsychiatric disease and treatment.
[55] Michael H Cole,et al. Wearable technology reveals gait compensations, unstable walking patterns and fatigue in people with multiple sclerosis , 2018, Physiological measurement.
[56] Ryan S. McGinnis,et al. Remote Gait Analysis Using Wearable Sensors Detects Asymmetric Gait Patterns in Patients Recovering from ACL Reconstruction , 2019, 2019 IEEE 16th International Conference on Wearable and Implantable Body Sensor Networks (BSN).
[57] M. Tomita,et al. Validity and Reliability of Four Clinical Gait Measures in Patients with Multiple Sclerosis. , 2017, International journal of MS care.
[58] Robert W Motl,et al. Stride-Time Variability and Fall Risk in Persons with Multiple Sclerosis , 2015, Multiple sclerosis international.
[59] Nigel H. Lovell,et al. Differences Between Gait on Stairs and Flat Surfaces in Relation to Fall Risk and Future Falls , 2017, IEEE Journal of Biomedical and Health Informatics.
[60] Nancy W Glynn,et al. Stride variability measures derived from wrist- and hip-worn accelerometers. , 2017, Gait & posture.
[61] Jeffrey M. Hausdorff,et al. Markedly impaired bilateral coordination of gait in post-stroke patients: Is this deficit distinct from asymmetry? A cohort study , 2011, Journal of NeuroEngineering and Rehabilitation.
[62] E. Dugan,et al. Physiological complexity of gait is decreased in individuals with chronic stroke , 2019, Computer methods in biomechanics and biomedical engineering.
[63] Yoshifumi Niki,et al. Relationship between Daily and In-laboratory Gait Speed among Healthy Community-dwelling Older Adults , 2019, Scientific Reports.
[64] Lynn Rochester,et al. Moving forward on gait measurement: Toward a more refined approach , 2013, Movement disorders : official journal of the Movement Disorder Society.
[65] C. Lamoth,et al. Gait and cognition: the relationship between gait stability and variability with executive function in persons with and without dementia. , 2012, Gait & posture.
[66] R. V. van Lummel,et al. Gait speed assessed by a 4-m walk test is not representative of daily-life gait speed in community-dwelling adults. , 2019, Maturitas.
[67] Abolfazl Soltani,et al. Real-World Gait Speed Estimation Using Wrist Sensor: A Personalized Approach , 2020, IEEE Journal of Biomedical and Health Informatics.
[68] Shigeo Tanabe,et al. Validity of gait asymmetry estimation by using an accelerometer in individuals with hemiparetic stroke , 2017, Journal of physical therapy science.
[69] A. Kalron,et al. Contrasting relationship between depression, quantitative gait characteristics and self-report walking difficulties in people with multiple sclerosis. , 2018, Multiple sclerosis and related disorders.
[70] Yee Sien Ng,et al. A Validated Smartphone-Based Assessment of Gait and Gait Variability in Parkinson’s Disease , 2015, PloS one.
[71] Massimiliano Pau,et al. Clinical assessment of gait in individuals with multiple sclerosis using wearable inertial sensors: Comparison with patient-based measure. , 2016, Multiple sclerosis and related disorders.
[72] W. L. Benedict,et al. Multiple Sclerosis , 2007, Journal - Michigan State Medical Society.
[73] R. Motl,et al. Sources of Variability in Physical Activity Among Inactive People with Multiple Sclerosis , 2018, International Journal of Behavioral Medicine.
[74] Nicholas Wickström,et al. A new measure of movement symmetry in early Parkinson's disease patients using symbolic processing of inertial sensor data , 2011, IEEE Transactions on Biomedical Engineering.
[75] Alexander T. Peebles,et al. Dynamic margin of stability during gait is altered in persons with multiple sclerosis. , 2016, Journal of biomechanics.
[76] Susan Coote,et al. Gait deficits in people with multiple sclerosis: A systematic review and meta-analysis. , 2017, Gait & posture.
[77] Julie Nantel,et al. Fallers with Parkinson's disease exhibit restrictive trunk control during walking. , 2018, Gait & posture.
[78] Jordan J. Craig,et al. The relationship between trunk and foot acceleration variability during walking shows minor changes in persons with multiple sclerosis , 2017, Clinical biomechanics.
[79] Fuyuan Liao,et al. Multi-resolution entropy analysis of gait symmetry in neurological degenerative diseases and amyotrophic lateral sclerosis. , 2008, Medical engineering & physics.
[80] B. Galna,et al. Validity of a wearable accelerometer to quantify gait in spinocerebellar ataxia type 6 , 2016, Physiological measurement.
[81] Carlo Pozzilli,et al. Assessing walking disability in multiple sclerosis , 2012, Multiple sclerosis.
[82] C. Peng,et al. What is physiologic complexity and how does it change with aging and disease? , 2002, Neurobiology of Aging.
[83] Alexander T. Peebles,et al. Dynamic balance in persons with multiple sclerosis who have a falls history is altered compared to non-fallers and to healthy controls. , 2017, Journal of biomechanics.
[84] R. Ghaffari,et al. A Pivotal Study to Validate the Performance of a Novel Wearable Sensor and System for Biometric Monitoring in Clinical and Remote Environments , 2019, Digital Biomarkers.
[85] Shyamal Patel,et al. A machine learning approach for gait speed estimation using skin-mounted wearable sensors: From healthy controls to individuals with multiple sclerosis , 2017, PloS one.
[86] Massimiliano Pau,et al. Smoothness of gait detects early alterations of walking in persons with multiple sclerosis without disability. , 2017, Gait & posture.
[87] M. Pau,et al. Texting while walking differently alters gait patterns in people with multiple sclerosis and healthy individuals. , 2018, Multiple sclerosis and related disorders.
[88] Pierre-André Farine,et al. A wrist sensor and algorithm to determine instantaneous walking cadence and speed in daily life walking , 2017, Medical & Biological Engineering & Computing.
[89] Alan Godfrey,et al. Validation of an Accelerometer to Quantify a Comprehensive Battery of Gait Characteristics in Healthy Older Adults and Parkinson's Disease: Toward Clinical and at Home Use , 2016, IEEE Journal of Biomedical and Health Informatics.
[90] Michael Schwenk,et al. Sensor-based balance training with motion feedback in people with mild cognitive impairment. , 2016, Journal of rehabilitation research and development.
[91] Wolff Schlotz,et al. Tracking daily fatigue fluctuations in multiple sclerosis: ecological momentary assessment provides unique insights , 2017, Journal of Behavioral Medicine.
[92] N. Stergiou,et al. Human movement variability, nonlinear dynamics, and pathology: is there a connection? , 2011, Human movement science.
[93] S. Studenski,et al. Aging, motor skill, and the energy cost of walking: implications for the prevention and treatment of mobility decline in older persons. , 2014, The journals of gerontology. Series A, Biological sciences and medical sciences.
[94] C. Capaday. The special nature of human walking and its neural control , 2002, Trends in Neurosciences.
[95] A. Goldberger,et al. Loss of 'complexity' and aging. Potential applications of fractals and chaos theory to senescence. , 1992, JAMA.
[96] T. Kuan,et al. Comparison of gait symmetry between poststroke fallers and nonfallers during level walking using triaxial accelerometry , 2017, Medicine.
[97] Kun Li,et al. Gazelle: Energy-Efficient Wearable Analysis for Running , 2017, IEEE Transactions on Mobile Computing.
[98] J. Noseworthy,et al. Multiple sclerosis. , 2002, Annual review of medicine.
[99] Fary Khan,et al. The use of laboratory gait analysis for understanding gait deterioration in people with multiple sclerosis , 2016, Multiple sclerosis.