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Precise Localization Within the GI Tract by Combining Classification of CNNs and Time-Series Analysis of HMMs

  • Julia Werner,
  • Christoph Gerum,
  • Moritz Reiber,
  • Jörg Nick,
  • Oliver Bringmann

摘要

This paper presents a method to efficiently classify the gastroenterologic section of images derived from Video Capsule Endoscopy (VCE) studies by exploring the combination of a Convolutional Neural Network (CNN) for classification with the time-series analysis properties of a Hidden Markov Model (HMM). It is demonstrated that successive time-series analysis identifies and corrects errors in the CNN output. Our approach achieves an accuracy of \(98.04\%\) on the Rhode Island (RI) Gastroenterology dataset. This allows for precise localization within the gastrointestinal (GI) tract while requiring only approximately 1M parameters and thus, provides a method suitable for low power devices.