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Data Validation

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Data validation is an essential part of a comprehensive assessment. Validation is confirming or verifying and opening the door to gathering more assessment data as it clarifies vague or unclear data. The process of checking and verifying the collected information is called data validation. The primary purpose of data validation is to ensure data is as free from error, bias, and misinterpretation as possible.
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A human-centered framework for data-driven anthropometric sizing: design and validation in a military context.

Kuo-Wei Su1, Yao-Te Tsai1, Kuan-Ying Chen1

  • 1Department of Information Management, National Kaohsiung University of Science and Technology, Kaohsiung, Taiwan.

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Summary

This study introduces a cost-effective, human-centered framework using machine learning for personalized equipment fitting. It successfully validated a data-driven sizing model and a smartphone prototype, improving usability in resource-limited settings.

Keywords:
Ergonomicshuman-centered designimage recognitionmachine learningsystem usability

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Area of Science:

  • Human-Computer Interaction
  • Ergonomics
  • Applied Machine Learning

Background:

  • Traditional anthropometric methods for equipment personalization are expensive, slow, and not scalable.
  • High-stakes professions require accurate and efficient personalized equipment fitting.
  • Existing methods struggle to accommodate diverse body types and resource constraints.

Purpose of the Study:

  • To propose and validate a low-cost, human-centered framework for personalized equipment fitting.
  • To integrate machine learning with usability evaluation for a data-driven sizing model.
  • To develop and test a smartphone-based prototype for real-world applicability.

Main Methods:

  • Applied clustering algorithms to anthropometric data for a data-driven sizing model.
  • Developed a smartphone-based prototype for framework validation.
  • Conducted usability evaluations using System Usability Scale (SUS) and Questionnaire for User Interaction Satisfaction (QUIS) with university and Air Force Academy students.

Main Results:

  • Achieved high usability scores: average SUS of 83 (82.5) and QUIS of 209.55 (187.33).
  • Validated the data model, demonstrating effective stratification of complex body types (p < .001).
  • Confirmed the framework's success in real-world applicability and user acceptance.

Conclusions:

  • The proposed framework offers a generalizable solution for personalized fitting systems in resource-constrained environments.
  • Machine learning integration with usability evaluation enhances the efficiency and scalability of anthropometric personalization.
  • The human-centered approach ensures user acceptance and practical implementation of personalized equipment solutions.