Artificial intelligence to support early diagnosis of temporomandibular disorders: A preliminary case study

可用性 鉴定(生物学) 医学诊断 专家系统 计算机科学 介绍 过程(计算) 接口(物质) 决策支持系统 用户界面 人工智能 医学 人机交互 护理部 病理 最大气泡压力法 气泡 植物 并行计算 操作系统 生物
作者
Bachar Reda,Luca Contardo,Marco Prenassi,Enrico Guerra,Giacomo Derchi,Sara Marceglia
出处
期刊:Journal of Oral Rehabilitation [Wiley]
卷期号:50 (1): 31-38 被引量:13
标识
DOI:10.1111/joor.13383
摘要

Temporomandibular disorders (TMDs) are disabling conditions with a negative impact on the quality of life. Their diagnosis is a complex and multi-factorial process that should be conducted by experienced professionals, and most TMDs remain often undetected. Increasing the awareness of un-experienced dentists and supporting the early TMD recognition may help reduce this gap. Artificial intelligence (AI) allowing both to process natural language and to manage large knowledge bases could support the diagnostic process.In this work, we present the experience of an AI-based system for supporting non-expert dentists in early TMD recognition.The system was based on commercially available AI services. The prototype development involved a preliminary domain analysis and relevant literature identification, the implementation of the core cognitive computing services, the web interface and preliminary testing. Performance evaluation included a retrospective review of seven available clinical cases, together with the involvement of expert professionals for usability testing.The system comprises one module providing possible diagnoses according to a list of symptoms, and a second one represented by a question and answer tool, based on natural language. We found that, even when using commercial services, the training guided by experts is a key factor and that, despite the generally positive feedback, the application's best target is untrained professionals.We provided a preliminary proof of concept of the feasibility of implementing an AI-based system aimed to support non-specialists in the early identification of TMDs, possibly allowing a faster and more frequent referral to second-level medical centres. Our results showed that AI is a useful tool to improve TMD detection by facilitating a primary diagnosis.
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