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A novel cervical image recognition framework based on feature cognitive enhancement for improved performance.

Renling Zou1, Jing Xu1, Qingbin Fang1

  • 1University of Shanghai for Science and Technology, China.

Proceedings of the Institution of Mechanical Engineers. Part H, Journal of Engineering in Medicine
|January 23, 2026
PubMed
Summary

A new deep learning model, FSMO, improves cervical cancer detection by enhancing feature extraction. This AI tool shows high accuracy, aiding in early diagnosis and treatment of cervical disease.

Keywords:
cervical cancercervical image recognitionfeature cognitive screeningmulti-scale feature classificationvision transformer

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Area of Science:

  • Medical Imaging
  • Artificial Intelligence
  • Oncology

Background:

  • Cervical cancer is a leading global cancer in women.
  • Early diagnosis is crucial for effective treatment.
  • Current diagnostic methods face challenges due to increasing patient numbers and doctor workload, potentially leading to misdiagnosis.

Purpose of the Study:

  • To develop a novel deep learning model for accurate classification of cervical images.
  • To address limitations in feature extraction of existing neural network models for cervical image recognition.

Main Methods:

  • Proposed a novel model named FSMO (Feature Cognitive Screening Module, Multi-scale Feature Classification Module, and Overlapping Sampling Module).
  • FSMO integrates global and local feature extraction, multi-scale feature fusion, and enhanced edge capturing capabilities.
  • The model was evaluated on a self-constructed dataset and a Kaggle dataset.

Main Results:

  • FSMO achieved 91.88% accuracy, 92.91% precision, 91.92% recall, and 91.99% F1-Score on the self-constructed dataset.
  • Achieved 97.5% accuracy on the Kaggle dataset.
  • Outperformed other advanced models in cervical image recognition.

Conclusions:

  • The FSMO model demonstrates significant potential for rapid auxiliary diagnosis in cervical imaging.
  • This AI-driven approach can contribute to the early detection and treatment of cervical cancer.
  • The model's enhanced feature extraction capabilities improve prediction accuracy for cervical disease classification.