Development of a comprehensive musculoskeletal model of the shoulder and elbow.

The Delft Shoulder and Elbow Model (DSEM), a musculoskeletal model of the shoulder and elbow has been extensively developed since its introduction in 1994. Extensions cover both model structures and anatomical data focusing on the addition of an elbow part and muscle architecture parameters. The mod...

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Publicado en:Medical & Biological Engineering & Computing Vol. 49; no. 12; pp. 1425 - 1436
Autores principales: Asadi Nikooyan A, Veeger HE, Chadwick EK, Praagman M, van der Helm FC, Nikooyan, A Asadi, Veeger, H E J, Chadwick, E K J, Praagman, M, Helm, F C T van der
Formato: research Journal Article
Publicado: Springer Nature Dec2011
Acceso en línea:Ver este registro en EBSCOhost
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      dt: Dec2011
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      pub: Springer Nature
      place: New York, New York
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        atl: Development of a comprehensive musculoskeletal model of the shoulder and elbow.
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          Asadi Nikooyan A
          Veeger HE
          Chadwick EK
          Praagman M
          van der Helm FC
          Nikooyan, A Asadi
          Veeger, H E J
          Chadwick, E K J
          Praagman, M
          Helm, F C T van der
        affil: Department of Biomechanical Engineering, Delft University of Technology, Mekelweg 2, 2628 CD, Delft, The Netherlands
      sug:
        subj:
          Elbow Joint Physiology
          Models, Biological
          Muscle, Skeletal Physiology
          Shoulder Joint Physiology
          Biomechanics
          Elbow Joint Anatomy and Histology
          Electromyography Methods
          Human
          Male
          Middle Age
          Shoulder Joint Anatomy and Histology
          Middle Aged: 45-64 years
          Male
      ab: The Delft Shoulder and Elbow Model (DSEM), a musculoskeletal model of the shoulder and elbow has been extensively developed since its introduction in 1994. Extensions cover both model structures and anatomical data focusing on the addition of an elbow part and muscle architecture parameters. The model was also extended with a new inverse-dynamics optimization cost function and combined inverse-forward-dynamics models. This study is an update on the developments of the model over the last decade including a qualitative validation of the different simulation architectures available in the DSEM. To validate the model, a dynamic forward flexion motion was performed by one subject, of which the motion data and surface EMG-signals of 12 superficial muscles were measured. Patterns of the model-predicted relative muscle forces were compared with their normalized EMG-signals. Results showed relatively good agreement between forces and EMG (mean correlation coefficient of 0.66). However, for some cases, no force was predicted while EMG activity had been measured (false-negatives). The DSEM has been used and has the potential to be used in a variety of clinical and biomechanical applications.
      pubtype: Academic Journal
      doctype:
        research
        Journal Article
      ougenre: Article
    language: English
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