Development of a 3D workspace shoulder assessment tool incorporating electromyography and an inertial measurement unit—a preliminary study
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Siamak Noroozi | Mihai Dupac | Philip Davenport | Philip Sewell | Richard Hartley | Navid Aslani | S. Noroozi | M. Dupac | P. Sewell | Navid Aslani | R. Hartley | P. Davenport | Mihai Dupac
[1] GyuChang Lee,et al. Comparison of shoulder range of motion, strength, and endurance in amateur pitchers practicing repetitive overhead throwing , 2013 .
[2] Silviu Butnariu,et al. Measurement and Geometric Modelling of Human Spine Posture for Medical Rehabilitation Purposes Using a Wearable Monitoring System Based on Inertial Sensors , 2016, Sensors.
[3] N. Bureau,et al. The deltoid, a forgotten muscle of the shoulder , 2013, Skeletal Radiology.
[4] J. Brown,et al. The function of neuromuscular compartments in human shoulder muscles. , 2012, Journal of neurophysiology.
[5] M. Kolber,et al. Clinimetric evaluation of the disabilities of the arm, shoulder, and hand (DASH) and QuickDASH questionnaires for patients with shoulder disorders , 2014 .
[6] N Waugh,et al. The effectiveness of diagnostic tests for the assessment of shoulder pain due to soft tissue disorders: a systematic review. , 2003, Health technology assessment.
[7] Alberto E. Minetti,et al. Shoulder 3D range of motion and humerus rotation in two volleyball spike techniques: injury prevention and performance , 2015, Sports biomechanics.
[8] Hee Chan Kim,et al. Measurement of Shoulder Range of Motion in Patients with Adhesive Capsulitis Using a Kinect , 2015, PloS one.
[9] Jizhong Xiao,et al. Keeping a Good Attitude: A Quaternion-Based Orientation Filter for IMUs and MARGs , 2015, Sensors.
[10] Dejan B. Popovic,et al. Kinematics of Gait: New Method for Angle Estimation Based on Accelerometers , 2011, Sensors.
[11] P. McClure,et al. Staged Approach for Rehabilitation Classification: Shoulder Disorders (STAR–Shoulder) , 2014, Physical Therapy.
[12] J. Brox,et al. A questionnaire found disease-specific WORC index is not more responsive than SPADI and OSS in rotator cuff disease. , 2010, Journal of clinical epidemiology.
[13] G. Kasman,et al. SURFACE EMG MADE EASY: A Beginner's Guide for Rehabilitation Clinicians , 2002 .
[14] H. Y. Kim,et al. A comparison of 3D scapular kinematics between dominant and nondominant shoulders during multiplanar arm motion , 2013, Indian journal of orthopaedics.
[15] Andrea Giovanni Cutti,et al. Intra-protocol repeatability and inter-protocol agreement for the analysis of scapulo-humeral coordination , 2013, Medical & Biological Engineering & Computing.
[16] Josien C. van den Noort,et al. Reliability and precision of 3D wireless measurement of scapular kinematics , 2014, Medical & Biological Engineering & Computing.
[17] Gui Do Moon,et al. Comparison of Maitland and Kaltenborn mobilization techniques for improving shoulder pain and range of motion in frozen shoulders , 2015, Journal of physical therapy science.
[18] Joshua Auerbach,et al. A cadaveric study on the anatomy of the deltoid insertion and its relationship to the deltopectoral approach to the proximal humerus. , 2004, Journal of shoulder and elbow surgery.
[19] Eduardo Palermo,et al. Experimental evaluation of accuracy and repeatability of a novel body-to-sensor calibration procedure for inertial sensor-based gait analysis , 2014 .
[20] Mark Halaki,et al. Normalization of EMG Signals: To Normalize or Not to Normalize and What to Normalize to? , 2012 .
[21] L. Bouter,et al. The Shoulder Disability Questionnaire differentiated well between high and low disability levels in patients in primary care, in a cross-sectional study. , 2007, Journal of clinical epidemiology.
[22] A. Kvåle,et al. Passive range of motion in patients with adhesive shoulder capsulitis, an intertester reliability study over eight weeks , 2015, BMC Musculoskeletal Disorders.
[23] Anita Kiselka,et al. SONIGait: a wireless instrumented insole device for real-time sonification of gait , 2015, Journal on Multimodal User Interfaces.
[24] Frederick Albert Matsen IV,et al. Codman's paradox: Sixty years later. , 1992, Journal of shoulder and elbow surgery.
[25] Jay J. Han,et al. Reachable workspace and performance of upper limb (PUL) in duchenne muscular dystrophy , 2016, Muscle & nerve.
[26] Nigel Zheng,et al. Electromyographic analysis of the rotator cuff and deltoid musculature during common shoulder external rotation exercises. , 2004, The Journal of orthopaedic and sports physical therapy.
[27] Oliver Rettig,et al. Motion patterns in activities of daily living: 3- year longitudinal follow-up after total shoulder arthroplasty using an optical 3D motion analysis system , 2014, BMC Musculoskeletal Disorders.
[28] Mikhail Kuznetsov,et al. Filtering the surface EMG signal: Movement artifact and baseline noise contamination. , 2010, Journal of biomechanics.
[29] S. Gandevia,et al. Contractions of specific abdominal muscles in postural tasks are affected by respiratory maneuvers. , 1997, Journal of applied physiology.
[30] Oliver Rettig,et al. Conjunct rotation: Codman’s paradox revisited , 2009, Medical & Biological Engineering & Computing.
[31] G. Fleisig,et al. Electromyographic analysis of the supraspinatus and deltoid muscles during 3 common rehabilitation exercises. , 2007, Journal of athletic training.
[32] Ruzena Bajcsy,et al. Validity, Reliability, and Sensitivity of a 3D Vision Sensor-based Upper Extremity Reachable Workspace Evaluation in Neuromuscular Diseases , 2013, PLoS currents.
[33] S. Lowenstein,et al. Reliability, validity, and responsiveness of the simple shoulder test: psychometric properties by age and injury type. , 2007, Journal of shoulder and elbow surgery.
[34] H. T. Tucci,et al. Closed Kinetic Chain Upper Extremity Stability test (CKCUES test): a reliability study in persons with and without shoulder impingement syndrome , 2014, BMC Musculoskeletal Disorders.
[35] I. Cathers,et al. Standard maximum isometric voluntary contraction tests for normalizing shoulder muscle EMG , 2008, Journal of orthopaedic research : official publication of the Orthopaedic Research Society.
[36] T. Yamashita,et al. Effects of different movement directions on electromyography recorded from the shoulder muscles while passing the target positions. , 2013, Journal of electromyography and kinesiology : official journal of the International Society of Electrophysiological Kinesiology.
[37] Jinwook Kim,et al. Upper body motion tracking with inertial sensors , 2010, 2010 IEEE International Conference on Robotics and Biomimetics.
[38] Xuguang Wang,et al. Effects of age and gender on maximum voluntary range of motion of the upper body joints , 2006, Ergonomics.
[39] Li-Qun Zhang,et al. The anterior deltoid's importance in reverse shoulder arthroplasty: a cadaveric biomechanical study. , 2013, Journal of shoulder and elbow surgery.
[40] O. Rettig,et al. Definition of anatomical zero positions for assessing shoulder pose with 3D motion capture during bilateral abduction of the arms , 2015, BMC Musculoskeletal Disorders.
[41] Jefferson Fagundes Loss,et al. Scapular kinematics and scapulohumeral rhythm during resisted shoulder abduction--implications for clinical practice. , 2009, Physical therapy in sport : official journal of the Association of Chartered Physiotherapists in Sports Medicine.
[42] Maxime Raison,et al. Measurement and description of three-dimensional shoulder range of motion with degrees of freedom interactions. , 2014, Journal of biomechanical engineering.
[43] Valeriya Gritsenko,et al. Feasibility of Using Low-Cost Motion Capture for Automated Screening of Shoulder Motion Limitation after Breast Cancer Surgery , 2015, PloS one.