Automated pharyngeal phase detection and bolus localization in videofluoroscopic swallowing study: Killing two birds with one stone?
Andrea Bandini, Sana Smaoui, Catriona M. Steele

TL;DR
This paper introduces a deep learning framework that simultaneously detects the pharyngeal phase and localizes the bolus in VFSS recordings using minimal annotations, significantly advancing automated swallowing analysis.
Contribution
It presents a novel weakly-supervised deep learning approach that jointly performs pharyngeal phase detection and bolus localization with limited ground truth annotations.
Findings
Pharyngeal phase detection achieved F1-score > 0.9.
Bolus localization correlated > 0.9 with ground truth.
Method requires only initial and final phase frames for training.
Abstract
The videofluoroscopic swallowing study (VFSS) is a gold-standard imaging technique for assessing swallowing, but analysis and rating of VFSS recordings is time consuming and requires specialized training and expertise. Researchers have recently demonstrated that it is possible to automatically detect the pharyngeal phase of swallowing and to localize the bolus in VFSS recordings via computer vision, fostering the development of novel techniques for automatic VFSS analysis. However, training of algorithms to perform these tasks requires large amounts of annotated data that are seldom available. We demonstrate that the challenges of pharyngeal phase detection and bolus localization can be solved together using a single approach. We propose a deep-learning framework that jointly tackles pharyngeal phase detection and bolus localization in a weakly-supervised manner, requiring only the…
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Taxonomy
TopicsDysphagia Assessment and Management · Tracheal and airway disorders · Voice and Speech Disorders
