Unsupervised temporal context learning using convolutional neural networks for laparoscopic workflow analysis
Sebastian Bodenstedt (1), Martin Wagner (2), Darko Kati\'c (1),, Patrick Mietkowski (2), Benjamin Mayer (2), Hannes Kenngott (2), Beat, M\"uller-Stich (2), R\"udiger Dillmann (1), Stefanie Speidel (1) ((1), Institute for Anthropomatics, Robotics

TL;DR
This paper introduces an unsupervised CNN-based approach to learn temporal features from unlabeled laparoscopic videos, enabling workflow analysis tasks like segmentation without requiring extensive annotated data.
Contribution
It presents a novel unsupervised training method for CNNs to understand laparoscopic video sequences, reducing reliance on annotated datasets for surgical workflow analysis.
Findings
Successfully trained CNN to determine temporal order of video frames
Achieved effective workflow segmentation on public laparoscopic datasets
Reduced need for expert-labeled data in surgical video analysis
Abstract
Computer-assisted surgery (CAS) aims to provide the surgeon with the right type of assistance at the right moment. Such assistance systems are especially relevant in laparoscopic surgery, where CAS can alleviate some of the drawbacks that surgeons incur. For many assistance functions, e.g. displaying the location of a tumor at the appropriate time or suggesting what instruments to prepare next, analyzing the surgical workflow is a prerequisite. Since laparoscopic interventions are performed via endoscope, the video signal is an obvious sensor modality to rely on for workflow analysis. Image-based workflow analysis tasks in laparoscopy, such as phase recognition, skill assessment, video indexing or automatic annotation, require a temporal distinction between video frames. Generally computer vision based methods that generalize from previously seen data are used. For training such…
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Taxonomy
TopicsColorectal Cancer Screening and Detection · Surgical Simulation and Training · Medical Image Segmentation Techniques
