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Machine learning-based classification of pathological shoulder motion using phase-specific kinematic features.

Hande Argunsah1

  • 1Faculty of Engineering and Natural Sciences, Department of Biomedical Engineering, Acibadem Mehmet Ali Aydinlar University, Istanbul, Turkey.

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|February 3, 2026
PubMed
Summary

Machine learning with upper-extremity exoskeleton data accurately identifies shoulder pathology. Discriminative movement phases were identified, aiding in interpretable analysis for clinical applications.

Keywords:
Robotic exoskeletonbiomechanical evaluationmachine learning classificationpermutation-based ablationphase-specific assessment

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Area of Science:

  • Biomechanics
  • Machine Learning
  • Orthopedics

Background:

  • Shoulder pathology diagnosis can be challenging.
  • Objective assessment of shoulder movement is crucial for diagnosis and rehabilitation.

Purpose of the Study:

  • To investigate the use of an upper-extremity exoskeleton for machine learning-based discrimination of orthopedic shoulder pathology.
  • To identify discriminative temporal features within shoulder movements.

Main Methods:

  • An upper-extremity exoskeleton was used to collect movement data.
  • Twelve patients with shoulder impairments and thirty healthy controls performed eight standardized tasks.
  • Logistic regression with 5-fold cross-validation was employed for classification, alongside temporal effect size and phase ablation analyses.

Main Results:

  • Classification performance ranged from 0.70 to 1.00 AUROC.
  • Six tasks achieved an Area Under the Receiver Operating Characteristic curve (AUROC) of 0.90 or higher.
  • Specific movement phases (mid-cycle, early, late) were identified as most informative for different movement types (flexion, abduction, rotation).

Conclusions:

  • Machine learning models utilizing exoskeleton data can effectively discriminate shoulder pathology.
  • Identifying key temporal movement phases enhances model interpretability and clinical relevance.
  • Phase-aware machine learning approaches show promise for objective orthopedic assessment.