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Endoscopic Procedures III: Video Capsule Endoscopy01:28

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Capsule endoscopy, or wireless or video capsule endoscopy, is a diagnostic procedure for examining the entire gastrointestinal tract. Patients swallow a capsule about the size of a vitamin tablet. The capsule is equipped with a transmitter, a battery, an LED light source, and a color video camera to capture images throughout the gastrointestinal tract. This procedure is particularly useful for diagnosing conditions such as Crohn's disease, ulcerative colitis, tumors, polyps, ulcers,...
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Related Experiment Video

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Deep Neural Networks for Image-Based Dietary Assessment
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A deep learning model using convolutional neural networks for caries detection and recognition with endoscopes.

Xiaoyi Zang1,2, Chunlong Luo3,4, Bo Qiao1,2

  • 1Medical School of Chinese PLA, Beijing, China.

Annals of Translational Medicine
|January 20, 2023
PubMed
Summary

A new deep learning model effectively detects dental caries using endoscopic images, aiding early diagnosis and treatment, especially in underserved areas. This technology promotes accessible oral healthcare monitoring for families.

Keywords:
Artificial intelligence (AI)caries lesionsdeep learningendoscopes

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Area of Science:

  • Dentistry
  • Artificial Intelligence
  • Medical Imaging

Background:

  • Dental caries is a prevalent global oral health issue, particularly in regions with limited medical resources.
  • Patients often delay seeking treatment until pain is severe, highlighting the need for early detection methods.
  • Deep convolutional neural networks (CNNs) show promise in medical image analysis, including stomatology.

Purpose of the Study:

  • To develop and evaluate a deep learning model for detecting and recognizing dental caries using endoscopic images.
  • To leverage accessible endoscopic technology for improved caries monitoring.

Main Methods:

  • A classification and semantic segmentation model (DeepLabv3+) was trained using 1,253 endoscopic images (194 non-caries, 1,059 caries).
  • The models were developed using images from the Department of Stomatology at PLAGH.
  • A 5-fold cross-validation protocol was employed for model evaluation.

Main Results:

  • The classification model achieved a high Area Under the Curve (AUC) of 0.9897.
  • The segmentation model demonstrated strong performance with an accuracy of 0.9843 and specificity of 0.9943.
  • Key segmentation metrics included a Dice coefficient of 0.7099 and Intersection over Union (IoU) of 0.5779.

Conclusions:

  • A deep learning model utilizing endoscopic images can effectively monitor dental caries.
  • The developed model supports early diagnosis and timely treatment of dental caries.
  • This approach offers a potential solution for accessible oral health monitoring.