New developments in the application of artificial intelligence to laryngology

被引:0
作者
Torborg, Stefan R. [1 ,2 ]
Kim, Ashley Yeo Eun [1 ]
Rameau, Anais [1 ]
机构
[1] Weill Cornell Med, Sean Parker Inst Voice, Dept Otolaryngol Head & Neck Surg, New York, NY USA
[2] Weill Cornell, Sloan Kettering Triinst MD PhD Program, Rockefelle, New York, NY USA
关键词
artificial intelligence; clinical decision support tools; deep learning; laryngology; videomics; vocal biomarkers; CLASSIFICATION; DYSPHAGIA;
D O I
10.1097/MOO.0000000000000999
中图分类号
R76 [耳鼻咽喉科学];
学科分类号
100213 ;
摘要
Purpose of reviewThe purpose of this review is to summarize the existing literature on artificial intelligence technology utilization in laryngology, highlighting recent advances and current barriers to implementation.Recent findingsThe volume of publications studying applications of artificial intelligence in laryngology has rapidly increased, demonstrating a strong interest in utilizing this technology. Vocal biomarkers for disease screening, deep learning analysis of videolaryngoscopy for lesion identification, and auto-segmentation of videofluoroscopy for detection of aspiration are a few of the new ways in which artificial intelligence is poised to transform clinical care in laryngology. Increasing collaboration is ongoing to establish guidelines and standards for the field to ensure generalizability.Recent findingsThe volume of publications studying applications of artificial intelligence in laryngology has rapidly increased, demonstrating a strong interest in utilizing this technology. Vocal biomarkers for disease screening, deep learning analysis of videolaryngoscopy for lesion identification, and auto-segmentation of videofluoroscopy for detection of aspiration are a few of the new ways in which artificial intelligence is poised to transform clinical care in laryngology. Increasing collaboration is ongoing to establish guidelines and standards for the field to ensure generalizability.SummaryArtificial intelligence tools have the potential to greatly advance laryngology care by creating novel screening methods, improving how data-heavy diagnostics of laryngology are analyzed, and standardizing outcome measures. However, physician and patient trust in artificial intelligence must improve for the technology to be successfully implemented. Additionally, most existing studies lack large and diverse datasets, external validation, and consistent ground-truth references necessary to produce generalizable results. Collaborative, large-scale studies will fuel technological innovation and bring artificial intelligence to the forefront of patient care in laryngology.
引用
收藏
页码:391 / 397
页数:7
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