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Colonoscopy Polyp Detection Using Bi-Directional Conv-LSTM U-Net with Densely Connected Convolution

  • 13-02-2024
  • Technical Contribution

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Abstract

The article introduces a novel deep learning model, BDCL-Net, for detecting polyps in colonoscopy images. It integrates Bi-Directional Conv-LSTM with U-Net and densely connected convolutions to improve segmentation accuracy. The model was trained on the Kvasir-SEG and CVC-ClinicDB datasets, demonstrating superior performance in terms of Dice coefficient, mean IoU, recall, and precision compared to existing methods. The study also highlights the importance of data augmentation in enhancing model generalizability and robustness. The proposed architecture offers promising advancements in medical image segmentation, particularly for colonoscopy polyp detection.

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Title
Colonoscopy Polyp Detection Using Bi-Directional Conv-LSTM U-Net with Densely Connected Convolution
Authors
Shweta Gangrade
Prakash Chandra Sharma
Akhilesh Kumar Sharma
Publication date
13-02-2024
Publisher
Springer Berlin Heidelberg
Published in
KI - Künstliche Intelligenz
Print ISSN: 0933-1875
Electronic ISSN: 1610-1987
DOI
https://doi.org/10.1007/s13218-024-00833-0
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