Papers › TeCNO: Surgical Phase Recognition with Multi-Stage Temporal Convolutional Networks

TeCNO: Surgical Phase Recognition with Multi-Stage Temporal Convolutional Networks

24 Mar 2020arXiv:2003.10751archive 2025-07-28

Tobias Czempiel, Magdalini Paschali, Matthias Keicher, Walter Simson, Hubertus Feussner, Seong Tae Kim, Nassir Navab

Automatic surgical phase recognition is a challenging and crucial task with the potential to improve patient safety and become an integral part of intra-operative decision-support systems. In this paper, we propose, for the first time in workflow analysis, a Multi-Stage Temporal Convolutional Network (MS-TCN) that performs hierarchical prediction refinement for surgical phase recognition. Causal, dilated convolutions allow for a large receptive field and online inference with smooth predictions even during ambiguous transitions. Our method is thoroughly evaluated on two datasets of laparoscopic cholecystectomy videos with and without the use of additional surgical tool information. Outperforming various state-of-the-art LSTM approaches, we verify the suitability of the proposed causal MS-TCN for surgical phase recognition.

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Code

tobiascz/TeCNO officialmentioned on GitHubpytorch report
xjgaocs/Trans-SVNet mentioned on GitHubpytorch report

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Tasks

Surgical phase recognition

Results from the paper archive 2025-07-28

TaskDatasetModelMetricValueRank at snapshotLeaderboardReport
Surgical phase recognition Cholec80 TCN F1 80.3 #5 of 6 Archive leaderboard report

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Methods

1x1 ConvolutionLSTMSigmoid ActivationTanh Activation

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