Comparison of Circular and Ellipse-Based Methods for Assessing Coordination Variability.

Vector coding is a widely adopted technique for analyzing coordination variability, but traditional circular statistics methods with finite difference are sensitive to outliers and artifacts, potentially affecting the accuracy of assessments. To address the limitation, Ellipse-based methods using fi...

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Publicado en:Journal of Applied Biomechanics Vol. 42; no. 4; pp. 290 - 299
Autores principales: Jeong, Hwigeum, van Emmerik, Richard
Formato: equations & formulas research tables/charts Journal Article
Publicado: Human Kinetics Publishers, Inc. Aug2026
Acceso en línea:Ver este registro en EBSCOhost
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      dt: Aug2026
      vid: 42
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      pub: Human Kinetics Publishers, Inc.
      place: Champaign, Illinois
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        10.1123/jab.2025-0270
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        atl: Comparison of Circular and Ellipse-Based Methods for Assessing Coordination Variability.
      aug:
        au:
          Jeong, Hwigeum
          van Emmerik, Richard
        affil: Department of Kinesiology, University of Massachusetts, Amherst, MA, USA
      sug:
        subj:
          Walking Speed Physiology
          Gait Physiology
          Motor Activity
          Biomechanics
          Human
          Male
          Female
          Adult
          Cross Sectional Studies
          Motion Capture
          Nonparametric Statistics
          Wilcoxon Rank Sum Test
          Comparative Studies
          Descriptive Statistics
          Kinematics
          Adult: 19-44 years
          Male
          Female
      ab: Vector coding is a widely adopted technique for analyzing coordination variability, but traditional circular statistics methods with finite difference are sensitive to outliers and artifacts, potentially affecting the accuracy of assessments. To address the limitation, Ellipse-based methods using finite difference or angular velocity have been proposed, but formal statistical comparisons have not been performed. Therefore, this study aimed to (1) assess coordination variability using 3 distinct vector coding methods: circular statistics with finite difference, ellipse-based coding with finite difference, and ellipse-based coding with angular velocity; and (2) examine how each method responds to changes in coordination variability resulting from variations in gait speed. Comparing coordination variability across these methods, the circular statistics method differed from the ellipse methods (ELMs) throughout the gait cycle, while the 2 ELMs showed similar patterns but responded differently to gait speed changes due to input variable differences. Notably, only the ELM with angular velocity consistently detected gait speed-related increases in coordination variability, suggesting caution when comparing findings across studies due to their methodological incompatibility. Furthermore, our findings indicate that the ELM incorporating angular velocity may be the most sensitive for detecting changes in gait speed.
      pubtype: Academic Journal
      doctype:
        equations & formulas
        research
        tables/charts
        Journal Article
      ougenre: Article
    language: English
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