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首页> 外文期刊>Electronic Journal of Health Informatics >Structured Pathology Reporting for Cancer from Free Text: Lung Cancer Case Study
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Structured Pathology Reporting for Cancer from Free Text: Lung Cancer Case Study

机译:从自由文本到癌症的结构化病理报告:肺癌案例研究

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摘要

Objective: To automatically generate structured reports for cancer, including TNM (Tumour-Node-Metastases) staging information, from free-text (non-structured) pathology reports. Method: A symbolic rule-based classification approach was proposed to identify symbols (or clinical concepts) in free-text reports that were subsumed by items specified in a structured report. Systematized Nomenclature of Medicine – Clinical Terms (SNOMED CT) was used as a base ontology to provide the semantics and relationships between concepts for subsumption querying. Synthesised values from the structured report such as TNM stages were also classified by building logic from relevant structured report items. The College of American Pathologists’ (CAP) surgical lung resection cancer checklist was used to demonstrate the methodology. Results: Checklist items were identified in the free text report and used for structured reporting. The synthesised TNM staging values classified by the system were evaluated against explicitly mentioned TNM stages from 487 reports and achieved an overall accuracy of 78%, 89% and 95% for T, N and M stages respectively. Conclusion: A system to generate structured cancer case reports from free-text pathology reports using symbolic rule-based classification techniques was developed and shows promise. The approach can be easily adapted for other cancer case structured reports.
机译:目的:自动从自由文本(非结构化)病理报告中生成结构化的癌症报告,包括TNM(肿瘤结点转移)分期信息。方法:提出了一种基于符号规则的分类方法,以识别自由文本报告中的符号(或临床概念),这些符号被结构化报告中指定的项目所包含。系统化的医学术语命名法-临床术语(SNOMED CT)被用作基础本体,以提供语义和概念之间的关系,以进行归类查询。结构化报告(如TNM阶段)的综合值也通过相关结构化报告项目的构建逻辑进行分类。美国病理学家学院(CAP)的手术肺切除术癌症检查清单用于证明该方法。结果:清单列表项在自由文本报告中被标识并用于结构化报告。针对487个报告中明确提到的TNM阶段,对系统分类的合成TNM阶段值进行了评估,对于T,N和M阶段,总体准确度分别为78%,89%和95%。结论:开发了一种使用基于符号规则的分类技术从自由文本病理报告生成结构化癌症病例报告的系统,该系统显示出了希望。该方法可轻松适用于其他癌症病例结构化报告。

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