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Deep learning-based surgical phase recognition in laparoscopic cholecystectomy

Authors
 Hye Yeon Yang  ;  Seung Soo Hong  ;  Jihun Yoon  ;  Bokyung Park  ;  Youngno Yoon  ;  Dai Hoon Han  ;  Gi Hong Choi  ;  Min-Kook Choi  ;  Sung Hyun Kim 
Citation
 Annals of Hepato-biliary-pancreatic Surgery, Vol.28(4) : 466-473, 2024-11 
Journal Title
Annals of Hepato-biliary-pancreatic Surgery
ISSN
 2508-5778 
Issue Date
2024-11
Keywords
Artificial intelligence ; Computer terminals ; Laparoscopic cholecystectomy ; Pattern recognition, automated ; Surgical procedures, operative
Abstract
Backgrounds/aims: Artificial intelligence (AI) technology has been used to assess surgery quality, educate, and evaluate surgical performance using video recordings in the minimally invasive surgery era. Much attention has been paid to automating surgical workflow analysis from surgical videos for an effective evaluation to achieve the assessment and evaluation. This study aimed to design a deep learning model to automatically identify surgical phases using laparoscopic cholecystectomy videos and automatically assess the accuracy of recognizing surgical phases.

Methods: One hundred and twenty cholecystectomy videos from a public dataset (Cholec80) and 40 laparoscopic cholecystectomy videos recorded between July 2022 and December 2022 at a single institution were collected. These datasets were split into training and testing datasets for the AI model at a 2:1 ratio. Test scenarios were constructed according to structural characteristics of the trained model. No pre- or post-processing of input data or inference output was performed to accurately analyze the effect of the label on model training.

Results: A total of 98,234 frames were extracted from 40 cases as test data. The overall accuracy of the model was 91.2%. The most accurate phase was Calot's triangle dissection (F1 score: 0.9421), whereas the least accurate phase was clipping and cutting (F1 score: 0.7761).

Conclusions: Our AI model identified phases of laparoscopic cholecystectomy with a high accuracy.
Files in This Item:
T202500105.pdf Download
DOI
10.14701/ahbps.24-091
Appears in Collections:
1. College of Medicine (의과대학) > Dept. of Surgery (외과학교실) > 1. Journal Papers
Yonsei Authors
Kim, Sung Hyun(김성현) ORCID logo https://orcid.org/0000-0001-7683-9687
Choi, Gi Hong(최기홍) ORCID logo https://orcid.org/0000-0002-1593-3773
Han, Dai Hoon(한대훈) ORCID logo https://orcid.org/0000-0003-2787-7876
Hong, Seung Soo(홍승수)
URI
https://ir.ymlib.yonsei.ac.kr/handle/22282913/201629
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