Nouvelles techniques de quantification de la marche applicables en pratique clinique
Tài liệu tham khảo
Cappozzo, 2005, Human movement analysis using stereophotogrammetry. Part 1: theoretical background, Gait Posture, 21, 186
Lloyd, 2003, An EMG-driven musculoskeletal model to estimate muscle forces and knee joint moments in vivo, J Biomech, 36, 765, 10.1016/S0021-9290(03)00010-1
Tao, 2012, Gait analysis using wearable sensors, Sensors, 12, 2255, 10.3390/s120202255
Kavanagh, 2008, Accelerometry: a technique for quantifying movement patterns during walking, Gait Posture, 28, 1, 10.1016/j.gaitpost.2007.10.010
O’Donovan, 2007, An inertial and magnetic sensor based technique for joint angle measurement, J Biomech, 40, 2604, 10.1016/j.jbiomech.2006.12.010
Turcot, 2008, New accelerometric method to discriminate between asymptomatic subjects and patients with medial knee osteoarthritis during 3-D gait, IEEE Trans Biomed Eng, 55, 1415, 10.1109/TBME.2007.912428
Auvinet, 2002, Reference data for normal subjects obtained with an accelerometric device, Gait Posture, 16, 124, 10.1016/S0966-6362(01)00203-X
Yang, 2013, Estimation of spatiotemporal parameters for post-stroke hemiparetic gait using inertial sensors, Gait Posture, 37, 354, 10.1016/j.gaitpost.2012.07.032
Moe-Nilssen, 1998, A new method for evaluating motor control in gait under real-life environmental conditions. Part 2: gait analysis, Clin Biomech, 13, 328, 10.1016/S0268-0033(98)00090-4
Wong, 2014, Gait and posture inter- and intra-rater reliability of the GAITRite system among individuals with sub-acute stroke, Gait Posture, 40, 259, 10.1016/j.gaitpost.2014.02.007
Mahon, 2015, Individual limb mechanical analysis of gait following stroke, J Biomech, 48, 984, 10.1016/j.jbiomech.2015.02.006
Veltink, 2005, Ambulatory measurement of ground reaction forces, IEEE Trans Neural Syst Rehabil Eng, 13, 423, 10.1109/TNSRE.2005.847359
Hubble, 2015, Wearable sensor use for assessing standing balance and walking stability in people with Parkinson's disease: a systematic review, PLos One, 10, e0123705, 10.1371/journal.pone.0123705
Hirasaki, 1999, Effects of walking velocity on vertical head and body movements during locomotion, Exp Brain Res, 127, 117, 10.1007/s002210050781
Palmerini, 2013, Quantification of motor impairment in Parkinson's disease using an instrumented timed up and go test, Neural Syst Rehabil Eng IEEE Trans, 21, 664, 10.1109/TNSRE.2012.2236577
Herman, 2014, Gait and balance in Parkinson's disease subtypes: objective measures and classification considerations, J Neurol, 261, 2401, 10.1007/s00415-014-7513-6
Fazio, 2013, Gait measures with a triaxial accelerometer among patients with neurological impairment, Neurol Sci, 34, 435, 10.1007/s10072-012-1017-x
Lowry KA, Smiley-oyen AL, Carrel AJ, Kerr JP. Walking stability using harmonic ratios in Parkinson's disease. 2009;24:261–7. doi:10.1002/mds.22352.
Ervin Sejdić, 2015, A comprehensive assessment of gait accelerometry signals in time, frequency and time-frequency domains, IEEE Trans Neural Syst Rehabil Eng, 22, 603, 10.1109/TNSRE.2013.2265887
Weiss, 2011, Toward automated, at-home assessment of mobility among patients with Parkinson disease, using a body-worn accelerometer, Neurorehabil Neural Repair, 25, 810, 10.1177/1545968311424869
Lowry, 2010, Use of harmonic ratios to examine the effect of cueing strategies on gait stability in persons with Parkinson's disease, Arch Phys Med Rehabil, 91, 632, 10.1016/j.apmr.2009.12.016
Latt, 2009, Acceleration patterns of the head and pelvis during gait in older people with Parkinson's disease: a comparison of fallers and nonfallers, J Gerontol, 64, 700, 10.1093/gerona/glp009
Weiss, 2014, New evidence for gait abnormalities among Parkinson's disease patients who suffer from freezing of gait: insights using a body-fixed sensor worn for 3 days, J Neural Transm, 122, 403, 10.1007/s00702-014-1279-y
Weiss, 2014, Objective assessment of fall risk in Parkinson's disease using a body-fixed sensor worn for 3 days, PLos One, 9
Zampieri, 2010, The instrumented timed up and go test: potential outcome measure for disease modifying therapies in Parkinson's disease, J Neurol Neurosurg Psychiatry, 81, 171, 10.1136/jnnp.2009.173740
Van Emmerik, 1999, Identification of axial rigidity during locomotion in Parkinson disease, Arch Phys Med Rehabil, 80, 186, 10.1016/S0003-9993(99)90119-3
Mirelman, 2013, Fall risk and gait in Parkinson's disease: the role of the LRRK2 G2019S mutation, Mov Disord, 28, 1683, 10.1002/mds.25587
Schaafsma, 2003, Gait dynamics in Parkinson's disease: relationship to Parkinsonian features, falls and response to levodopa, J Neurol Sci, 212, 47, 10.1016/S0022-510X(03)00104-7
Weiss, 2014, New evidence for gait abnormalities among Parkinson's disease patients who suffer from freezing of gait: insights using a body-fixed sensor worn for 3 days, J Neural Transm, 122, 403, 10.1007/s00702-014-1279-y
Balasubramanian, 2007, Relationship between step length asymmetry and walking performance in subjects with chronic hemiparesis, Arch Phys Med Rehabil, 88, 43, 10.1016/j.apmr.2006.10.004
Alexander, 2009, Association between gait asymmetry and brain lesion location in stroke patients, Stroke, 40, 537, 10.1161/STROKEAHA.108.527374
Beauchamp, 2009, Immediate effects of cane use on gait symmetry in individuals with subacute stroke, Physiother Canada, 61, 154, 10.3138/physio.61.3.154
Chisholm, 2013, Correlations between ankle-foot impairments and dropped foot gait deviations among stroke survivors, Clin Biomech, 28, 1049, 10.1016/j.clinbiomech.2013.09.007
Esquenazi, 2009, The effect of an ankle-foot orthosis on temporal hemiparetic patients, PMRJ, 1, 1014
Hendrickson, 2014, Relationship between asymmetry of quiet standing balance control and walking post-stroke, Gait Posture, 39, 177, 10.1016/j.gaitpost.2013.06.022
Hornby, 2008, Enhanced gait-related improvements after therapist- versus robotic-assisted locomotor training in subjects with, Stroke, 39, 1786, 10.1161/STROKEAHA.107.504779
Patterson, 2008, Gait asymmetry in community-ambulating stroke survivors, Arch Phys Med Rehabil, 89, 304, 10.1016/j.apmr.2007.08.142
Patterson, 2012, Gait symmetry and velocity differ in their relationship to age, Gait Posture, 35, 590, 10.1016/j.gaitpost.2011.11.030
Lau, 2008, The reliability of using accelerometer and gyroscope for gait event identification on persons with dropped foot, Gait Posture, 27, 248, 10.1016/j.gaitpost.2007.03.018
Mizuike, 2009, Analysis of stroke patient walking dynamics using a tri-axial accelerometer, Gait Posture, 30, 60, 10.1016/j.gaitpost.2009.02.017
Gouwanda, 2011, Identifying gait asymmetry using gyroscopes – A cross-correlation and Normalized Symmetry Index approach, J Biomech, 44, 972, 10.1016/j.jbiomech.2010.12.013
Dobkin, 2011, Reliability and validity of bilateral ankle accelerometer algorithms for activity recognition and walking speed after stroke, Stroke, 42, 2246, 10.1161/STROKEAHA.110.611095
Von Schroeder, 1995, Gait parameters following stroke: a practical assessment, J Rehabil Res Dev, 32, 25
Balaban, 2014, Gait disturbances in patients with stroke, PM&R, 6, 635, 10.1016/j.pmrj.2013.12.017
Tao, 2015, Gait improvement by low-dose botulinum toxin A injection treatment of the lower limbs in subacute stroke patients, J Phys Ther Sci, 27, 759, 10.1589/jpts.27.759
Richards, 1996, Hemiparetic gait following stroke. Part II: recovery and physical therapy, Gait Posture, 4, 149, 10.1016/0966-6362(96)01064-8
Shimada, 2005, Clinical application of acceleration sensor to detect the swing phase of stroke gait in functional electrical stimulation, Tohoku J Exp Med, 207, 197, 10.1620/tjem.207.197
Chien, 2006, The efficacy of quantitative gait analysis by the GAITRite system in evaluation of parkinsonian bradykinesia, Park Relat Disord, 12, 438, 10.1016/j.parkreldis.2006.04.004
Mirelman, 2013, Fall risk and gait in Parkinson's disease: the role of the LRRK2 G2019S mutation fall risk and gait in Parkinson's disease: the role of the LRRK2 G2019S mutation, Mov Disord, 28, 1683, 10.1002/mds.25587
Anna, 2011, A new measure of movement symmetry in early Parkinson's disease patients using symbolic processing of inertial sensor data, IEEE Trans Biomed Eng, 58, 2127, 10.1109/TBME.2011.2149521