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An automated approach for real-time informative frames classification in laryngeal endoscopy using deep learning

19

Citations

15

References

2024

Year

Abstract

The deep learning model demonstrated excellent performance in identifying diagnostically relevant frames within laryngoscopic videos. With its solid accuracy and real-time capabilities, the system is promising for its development in a clinical setting, either autonomously for objective quality control or in conjunction with other algorithms within a comprehensive AI toolset aimed at enhancing tumor detection and diagnosis.

References

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