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1.
PLoS One ; 16(7): e0254509, 2021.
Artigo em Inglês | MEDLINE | ID: mdl-34234381

RESUMO

[This corrects the article DOI: 10.1371/journal.pone.0252425.].

2.
PLoS One ; 16(5): e0252425, 2021.
Artigo em Inglês | MEDLINE | ID: mdl-34048476

RESUMO

Accurate computation of joint angles from optical marker data using inverse kinematics methods requires that the locations of markers on a model match the locations of experimental markers on participants. Marker registration is the process of positioning the model markers so that they match the locations of the experimental markers. Markers are typically registered using a graphical user interface (GUI), but this method is subjective and may introduce errors and uncertainty to the calculated joint angles and moments. In this investigation, we use OpenSim to isolate and quantify marker registration-based error from other sources of error by analyzing the gait of a bipedal humanoid robot for which segment geometry, mass properties, and joint angles are known. We then propose a marker registration method that is informed by the orientation of anatomical reference frames derived from surface-mounted optical markers as an alternative to user registration using a GUI. The proposed orientation registration method reduced the average root-mean-square error in both joint angles and joint moments by 67% compared to the user registration method, and eliminated variability among users. Our results show that a systematic method for marker registration that reduces subjective user input can make marker registration more accurate and repeatable.


Assuntos
Articulações/fisiologia , Robótica , Fenômenos Biomecânicos , Movimento , Interface Usuário-Computador
3.
PLoS Comput Biol ; 14(7): e1006223, 2018 07.
Artigo em Inglês | MEDLINE | ID: mdl-30048444

RESUMO

Movement is fundamental to human and animal life, emerging through interaction of complex neural, muscular, and skeletal systems. Study of movement draws from and contributes to diverse fields, including biology, neuroscience, mechanics, and robotics. OpenSim unites methods from these fields to create fast and accurate simulations of movement, enabling two fundamental tasks. First, the software can calculate variables that are difficult to measure experimentally, such as the forces generated by muscles and the stretch and recoil of tendons during movement. Second, OpenSim can predict novel movements from models of motor control, such as kinematic adaptations of human gait during loaded or inclined walking. Changes in musculoskeletal dynamics following surgery or due to human-device interaction can also be simulated; these simulations have played a vital role in several applications, including the design of implantable mechanical devices to improve human grasping in individuals with paralysis. OpenSim is an extensible and user-friendly software package built on decades of knowledge about computational modeling and simulation of biomechanical systems. OpenSim's design enables computational scientists to create new state-of-the-art software tools and empowers others to use these tools in research and clinical applications. OpenSim supports a large and growing community of biomechanics and rehabilitation researchers, facilitating exchange of models and simulations for reproducing and extending discoveries. Examples, tutorials, documentation, and an active user forum support this community. The OpenSim software is covered by the Apache License 2.0, which permits its use for any purpose including both nonprofit and commercial applications. The source code is freely and anonymously accessible on GitHub, where the community is welcomed to make contributions. Platform-specific installers of OpenSim include a GUI and are available on simtk.org.


Assuntos
Simulação por Computador , Movimento , Músculo Esquelético/fisiologia , Design de Software , Animais , Fenômenos Biomecânicos , Marcha/fisiologia , Força da Mão/fisiologia , Humanos , Sistemas Homem-Máquina , Neurônios Motores/fisiologia , Paralisia/fisiopatologia , Tecnologia Assistiva , Caminhada/fisiologia
4.
J Electromyogr Kinesiol ; 31: 126-135, 2016 Dec.
Artigo em Inglês | MEDLINE | ID: mdl-27810649

RESUMO

There is a large and growing body of surface electromyography (sEMG) research using laboratory-specific signal processing procedures (i.e., digital filter type and amplitude normalisation protocols) and data analyses methods (i.e., co-contraction algorithms) to acquire practically meaningful information from these data. As a result, the ability to compare sEMG results between studies is, and continues to be challenging. The aim of this study was to determine if digital filter type, amplitude normalisation method, and co-contraction algorithm could influence the practical or clinical interpretation of processed sEMG data. Sixteen elite female athletes were recruited. During data collection, sEMG data was recorded from nine lower limb muscles while completing a series of calibration and clinical movement assessment trials (running and sidestepping). Three analyses were conducted: (1) signal processing with two different digital filter types (Butterworth or critically damped), (2) three amplitude normalisation methods, and (3) three co-contraction ratio algorithms. Results showed the choice of digital filter did not influence the clinical interpretation of sEMG; however, choice of amplitude normalisation method and co-contraction algorithm did influence the clinical interpretation of the running and sidestepping task. Care is recommended when choosing amplitude normalisation method and co-contraction algorithms if researchers/clinicians are interested in comparing sEMG data between studies.


Assuntos
Eletromiografia/métodos , Movimento , Músculo Esquelético/fisiologia , Adolescente , Algoritmos , Calibragem , Eletromiografia/instrumentação , Eletromiografia/normas , Feminino , Humanos , Processamento de Sinais Assistido por Computador , Adulto Jovem
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