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Deep Learning-Based Object Detection System for Vocal Cords in Laryngoscopy Images

  • Ying Chang Wu*
  • , Sheng Fu Liang
  • , Cheng Ming Hsu
  • , Ming Chi Cheng
  • *此作品的通信作者
  • National Cheng Kung University
  • Chang Gung Memorial Hospital

研究成果: 圖書/報告稿件的類型會議稿件同行評審

摘要

Accurate localization of the vocal folds is critical for diagnostic and therapeutic applications in medical imaging. This paper developed a deep learning-based object detection system to address different tasks related to vocal fold detection. A two-step transfer learning approach was proposed for model training. The YOLOv8 was pre-trained with a large scale of high-speed video recordings available in a public dataset. Then, we fine-tuned the model using a 1:1 combination of the data from the public dataset and the low-frame rate (30 frames/sec) dataset collected from the hospital CGMH in Taiwan to fine-tune the final optimized glottis detection model. The results show that the recall and precision of ROI multiple bounding box predictions are 97.6% and 98.3%, respectively. In comparison, the recall and precision of single bounding box predictions are 97.5% and 100%, respectively. These results demonstrate the successful use of deep learning technology for vocal fold localization with superior performance. Our study provides valuable information for selecting appropriate object detection modalities in medical imaging applications for diagnosis and treatment planning in laryngology and otorhinolaryngology.

原文英語
主出版物標題2025 IEEE Conference on Computational Intelligence in Bioinformatics and Computational Biology, CIBCB 2025
發行者Institute of Electrical and Electronics Engineers Inc.
ISBN(電子)9798331502669
DOIs
出版狀態已出版 - 2025
對外發佈
事件2025 IEEE Conference on Computational Intelligence in Bioinformatics and Computational Biology, CIBCB 2025 - Tainan, 台灣
持續時間: 20 08 202522 08 2025

出版系列

名字2025 IEEE Conference on Computational Intelligence in Bioinformatics and Computational Biology, CIBCB 2025

Conference

Conference2025 IEEE Conference on Computational Intelligence in Bioinformatics and Computational Biology, CIBCB 2025
國家/地區台灣
城市Tainan
期間20/08/2522/08/25

文獻附註

Publisher Copyright:
© 2025 IEEE.

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