[Development and validation of a clinical automatic diagnosis system based on diagnostic criteria for temporomandibular disorders].

Q3 Medicine
北京大学学报(医学版) Pub Date : 2025-02-18
Yuanyuan Fang, Fan Xu, Jie Lei, Hao Zhang, Wenyu Zhang, Yu Sun, Hongxin Wu, Kaiyuan Fu, Weiyu Mao
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引用次数: 0

Abstract

Objective: To develop a clinical automated diagnostic system for temporomandibular disorders (TMD) based on the diagnostic criteria for TMD (DC/TMD) to assist dentists in making rapid and accurate clinical diagnosis of TMD.

Methods: Clinical and imaging data of 354 patients, who visited the Center for TMD & Orofacial Pain at Peking University Hospital of Stomatology from September 2023 to January 2024, were retrospectively collected. The study developed a clinical automated diagnostic system for TMD using the DC/TMD, built on the. NET Framework platform with branching statements as its internal structure. Further validation of the system on consistency and diagnostic efficacy compared with DC/TMD were also explored. Diagnostic efficacy of the TMD clinical automated diagnostic system for degenerative joint diseases, disc displacement with reduction, disc displacements without reduction with limited mouth opening and disc displacement without reduction without limited mouth opening was evaluated and compared with a specialist in the field of TMD. Accuracy, precision, specificity and the Kappa value were assessed between the TMD clinical automated diagnostic system and the specialist.

Results: Diagnoses for various TMD subtypes, including pain-related TMD (arthralgia, myalgia, headache attributed to TMD) and intra-articular TMD (disc displacement with reduction, disc displacement with reduction with intermittent locking, disc displacement without reduction with limited opening, disc displacement without reduction without limited opening, degenerative joint disease and subluxation), using the TMD clinical automated diagnostic system were completely identical to those obtained by the TMD specialist based on DC/TMD. Both the system and the expert showed low sensitivity for diagnosing degenerative joint disease (0.24 and 0.37, respectively), but high specificity (0.96). Both methods achieved high accuracy (> 0.9) for diagnosing disc displacements with reduction and disc displacements without reduction with limited mouth opening. The sensitivity for diagnosing disc displacement without reduction without limited mouth opening was only 0.59 using the automated system, lower than the expert (0.87), while both had high specificity (0.92). The Kappa values for most TMD subtypes were close to 1, except the disc displacement without reduction without limited mouth opening, which had a Kappa value of 0.68.

Conclusion: This study developed and validated a reliable clinical automated diagnostic system for TMD based on DC/TMD. The system is designed to facilitate the rapid and accurate diagnosis and classification of TMD, and is expected to be an important tool in clinical scenarios.

[基于颞下颌疾病诊断标准的临床自动诊断系统的开发与验证]。
目的:建立基于颞下颌关节疾病诊断标准(DC/TMD)的颞下颌关节疾病临床自动诊断系统,帮助牙医对颞下颌关节疾病进行快速、准确的临床诊断。方法:回顾性收集2023年9月至2024年1月在北京大学口腔医院TMD及口腔面部疼痛中心就诊的354例患者的临床及影像学资料。本研究开发了一种基于DC/TMD的TMD临床自动诊断系统。. NET框架平台,以分支语句作为其内部结构。进一步验证了该系统与DC/TMD的一致性和诊断效果。评估了TMD临床自动诊断系统对退行性关节疾病、椎间盘移位伴复位、椎间盘移位不复位伴限制开口和椎间盘移位不复位伴限制开口的诊断效果,并与TMD领域的专家进行了比较。在TMD临床自动诊断系统和专家之间评估准确性、精密度、特异性和Kappa值。结果:各种TMD亚型的诊断,包括与疼痛相关的TMD(关节痛、肌痛、TMD引起的头痛)和关节内TMD(椎间盘移位伴复位、椎间盘移位伴复位伴间歇性锁定、椎间盘移位不复位伴开口受限、椎间盘移位不复位伴开口受限、退行性关节疾病和半脱位)。使用TMD临床自动诊断系统的结果与TMD专家基于DC/TMD获得的结果完全相同。系统和专家对退行性关节疾病的诊断敏感性较低(分别为0.24和0.37),但特异性较高(0.96)。两种方法在诊断有复位的椎间盘移位和有限制开口的无复位的椎间盘移位时都达到了很高的准确度(> 0.9)。自动诊断无复位无限制开口椎间盘移位的敏感性仅为0.59,低于专家诊断的敏感性(0.87),但两者均具有较高的特异性(0.92)。大多数TMD亚型的Kappa值都接近于1,但不限制开口的椎间盘移位不复位Kappa值为0.68。结论:本研究开发并验证了一套可靠的基于DC/TMD的TMD临床自动诊断系统。该系统旨在促进TMD的快速准确诊断和分类,有望成为临床场景中的重要工具。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
北京大学学报(医学版)
北京大学学报(医学版) Medicine-Medicine (all)
CiteScore
0.80
自引率
0.00%
发文量
9815
期刊介绍: Beijing Da Xue Xue Bao Yi Xue Ban / Journal of Peking University (Health Sciences), established in 1959, is a national academic journal sponsored by Peking University, and its former name is Journal of Beijing Medical University. The coverage of the Journal includes basic medical sciences, clinical medicine, oral medicine, surgery, public health and epidemiology, pharmacology and pharmacy. Over the last few years, the Journal has published articles and reports covering major topics in the different special issues (e.g. research on disease genome, theory of drug withdrawal, mechanism and prevention of cardiovascular and cerebrovascular diseases, stomatology, orthopaedic, public health, urology and reproductive medicine). All the topics involve latest advances in medical sciences, hot topics in specific specialties, and prevention and treatment of major diseases. The Journal has been indexed and abstracted by PubMed Central (PMC), MEDLINE/PubMed, EBSCO, Embase, Scopus, Chemical Abstracts (CA), Western Pacific Region Index Medicus (WPR), JSTChina, and almost all the Chinese sciences and technical index systems, including Chinese Science and Technology Paper Citation Database (CSTPCD), Chinese Science Citation Database (CSCD), China BioMedical Bibliographic Database (CBM), CMCI, Chinese Biological Abstracts, China National Academic Magazine Data-Base (CNKI), Wanfang Data (ChinaInfo), etc.
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