2019
DOI: 10.1007/s11548-019-02025-w
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Novel evaluation of surgical activity recognition models using task-based efficiency metrics

Abstract: Purpose: Surgical task-based metrics (rather than entire procedure metrics) can be used to improve surgeon training and, ultimately, patient care through focused training interventions. Machine learning models to automatically recognize individual tasks or activities are needed to overcome the otherwise manual effort of video review. Traditionally, these models have been evaluated using frame-level accuracy. Here, we propose evaluating surgical activity recognition models by their effect on task-based efficien… Show more

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Cited by 27 publications
(21 citation statements)
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“…If these surgical activity recognition models could assess each phase of a surgical procedure, they could be utilised to compute efficiency metrics. Nevertheless, most models reported in the literature ranged from around 50–80% accuracy [ 44 ]. Recognition of anatomical landmarks is a current limitation of APMs evaluating surgical skills.…”
Section: Methodsmentioning
confidence: 99%
“…If these surgical activity recognition models could assess each phase of a surgical procedure, they could be utilised to compute efficiency metrics. Nevertheless, most models reported in the literature ranged from around 50–80% accuracy [ 44 ]. Recognition of anatomical landmarks is a current limitation of APMs evaluating surgical skills.…”
Section: Methodsmentioning
confidence: 99%
“…Workflow supporting systems are the research field of several workgroups, but most of them focus on automatic situation recognition to determine the current state of the surgery [9][10][11]. In [12] a "surgical procedure manager" is used to guide the surgeon through an endonasal procedure using pre-defined checklist items, which are confirmed by a footswitch.…”
Section: State Of the Art Checklistsmentioning
confidence: 99%
“…An initial SVM classifier system has been presented with remarkable accuracy in the assessment of surgical performance or skills, even is fed by limited data (Ghani et al 2016 ; Hung et al 2018c ). Increasing AI algorithms and models have been developed (Table 3 ) (Hung et al 2019 ; Zia et al 2018 , 2019 ; Schroerlucke et al 2017 ; Rao et al 2017 ; Guan et al 2017 ). We believe video-based surgery, both robotic and laparoscopy, is a fertile soil for AI to land on.…”
Section: Introductionmentioning
confidence: 99%