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Updated: Jan 15, 2026

A Porcine Model of Acute Autologous Pulmonary Embolism
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Comparing computer vision models for detecting chronic pleurisy in pigs.

Daniel Hjorth Lund1, Lis Alban2, Matt Denwood3

  • 1Section of Animal Welfare, Danish Technological Institute, Taastrup, Denmark.

Preventive Veterinary Medicine
|October 7, 2025
PubMed
Summary

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Computer vision systems (CVS) show high accuracy in detecting chronic pleurisy in pigs, outperforming traditional meat inspection in sensitivity. This technology offers precise, uniform registration for quality assurance in meat inspection frameworks.

Area of Science:

  • Veterinary diagnostics
  • Artificial intelligence in agriculture
  • Food safety technology

Background:

  • Chronic pleurisy negatively impacts pig productivity and is relevant for abattoir quality assurance.
  • Official registration of chronic pleurisy is no longer a priority for Danish authorities.
  • Accurate detection of chronic pleurisy is crucial for understanding its prevalence and economic impact.

Purpose of the Study:

  • To evaluate the diagnostic performance of three convolutional neural network (CNN) models in a computer vision system (CVS) for detecting chronic pleurisy in pig carcasses.
  • To compare the CVS diagnostic performance against official meat inspection methods.
  • To assess the potential of CVS technology for risk-based meat inspection.

Main Methods:

  • Analysis of data from 85,413 pig carcasses across 15 slaughter days.
Keywords:
Carcass evaluationLatent class modellingMachine visionMeat safety assurance

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  • Evaluation using traditional agreement statistics and Bayesian latent class modeling, independent of a gold standard.
  • Comparison of sensitivity and specificity between CVS models and human meat inspectors using Cohen's kappa and prevalence- and bias-adjusted kappa.
  • Main Results:

    • CVS models demonstrated moderate to near-perfect agreement with meat inspectors (kappa values 0.72-0.89).
    • CVS models exhibited superior sensitivity (84.7-90.3%) compared to meat inspectors (79.4-83.0%).
    • Meat inspectors maintained slightly higher specificity (99.7-99.9%) than CVS models (97.6-98.8%).
    • The ResNeXt-101 architecture (CVS-Complex-HighRes) performed best; consensus from multiple models improved specificity.
    • No significant associations were found between CVS detection and other meat inspection findings, except minor defects.

    Conclusions:

    • Computer vision systems offer precise and uniform detection of chronic pleurisy, complementing traditional meat inspection.
    • CVS technology shows promise for implementation in risk-based meat inspection frameworks.
    • Further work is needed to establish performance thresholds and address regulatory aspects for commercial adoption.