Performance of computer scientists in the assessment of thyroid nodules using TIRADS lexicons.

IF 5.4 2区 医学 Q1 Medicine Journal of Endocrinological Investigation Pub Date : 2024-12-18 DOI:10.1007/s40618-024-02518-9
P Trimboli, A Colombo, E Gamarra, L Ruinelli, A Leoncini
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Abstract

Objectives: Ultrasound (US) evaluation is recognized as pivotal in assessing the risk of malignancy (RoM) of thyroid nodules (TNs). Recently, various US-based risk-classification systems (Thyroid Imaging and Reporting Data Systems [TIRADSs] have been developed. An important ongoing project concerns the creation of an international system (I-TIRADS) using unique terminology. Since online tool allow clinicians and patients to stratify the RoM of any TN, the role of computer scientist (CS) should be relevant. This study explored the performance of CS in assessing TNs across the TIRADS categories.

Methods: The most diffused TIRADSs (i.e., ACR, EU, and K) were considered. Three-hundred scenarios were created. A CS was asked to assess the 300 TNs according to ACR-, EU-, and K-TIRADS. These data were compared with that of clinicians. The inter-observer agreement was estimated with Cohen kappa (κ). Word-cloud plots were used to graph the US descriptors with disagreement.

Results: The correspondence of the CS's assessment with the physicians was 100%, 81%, and 43%, using ACR-, EU-, and K-TIRADS, respectively. The CS was unable to classify 19/100 TNs according to EU-TIRADS and 15/100 TNs according to K-TIRADS. The inter-observer agreement between CS and physicians was excellent for ACR-TIRADS (κ = 1), moderate for EU-TIRADS (κ = 0.56), and fair for K-TIRADS (κ = 0.22). Among the non-concordant cases, 16/22 descriptors for EU-TIRADS and 18/18 descriptors for K-TIRADS were found.

Conclusion: CSs are confident with the ACR-TIRADS lexicon and structure while not with EU- and K-TIRADS, probably because they are pattern-based systems requiring medical training.

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计算机科学家在使用 TIRADS 词典评估甲状腺结节方面的表现。
目的:超声(US)评估被认为是评估甲状腺结节(TNs)恶性肿瘤(RoM)风险的关键。最近,美国开发了各种风险分类系统(甲状腺成像和报告数据系统[tirads])。一个重要的正在进行的项目涉及建立一个使用独特术语的国际系统(I-TIRADS)。由于在线工具允许临床医生和患者对任何TN的RoM进行分层,计算机科学家(CS)的角色应该相关。本研究探讨了CS在TIRADS类别中评估TNs的表现。方法:考虑分布最广的tirads(即ACR、EU和K)。创建了300个场景。要求CS根据ACR-, EU-和K-TIRADS对300个tn进行评估。将这些数据与临床医生的数据进行比较。用Cohen kappa (κ)估计观察者间的一致性。单词云图被用来绘制不一致的美国描述符。结果:使用ACR-、EU-和K-TIRADS, CS的评估与医生的符合率分别为100%、81%和43%。CS无法根据EU-TIRADS和K-TIRADS分类19/100 tn和15/100 tn。CS和医生之间的观察者间一致性对于ACR-TIRADS为极好(κ = 1),对于EU-TIRADS为中等(κ = 0.56),对于K-TIRADS为一般(κ = 0.22)。在不一致的病例中,EU-TIRADS的描述符为16/22,K-TIRADS的描述符为18/18。结论:CSs对ACR-TIRADS的词汇和结构有信心,而对EU-和K-TIRADS则没有信心,这可能是因为它们是基于模式的系统,需要医学培训。
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
Journal of Endocrinological Investigation
Journal of Endocrinological Investigation ENDOCRINOLOGY & METABOLISM-
CiteScore
8.10
自引率
7.40%
发文量
242
期刊介绍: The Journal of Endocrinological Investigation is a well-established, e-only endocrine journal founded 36 years ago in 1978. It is the official journal of the Italian Society of Endocrinology (SIE), established in 1964. Other Italian societies in the endocrinology and metabolism field are affiliated to the journal: Italian Society of Andrology and Sexual Medicine, Italian Society of Obesity, Italian Society of Pediatric Endocrinology and Diabetology, Clinical Endocrinologists’ Association, Thyroid Association, Endocrine Surgical Units Association, Italian Society of Pharmacology.
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