Retrieval of Radiology Reports Citing Critical Findings with Disease-Specific Customization

Author:

Lacson Ronilda,Sugarbaker Nathanael,Prevedello Luciano M,Ivan IP,Mar Wendy,Andriole Katherine P,Khorasani Ramin

Abstract

Background: Communication of critical results from diagnostic procedures between caregivers is a Joint Commission national patient safety goal. Evaluating critical result communication often requires manual analysis of voluminous data, especially when reviewing unstructured textual results of radiologic findings. Information retrieval (IR) tools can facilitate this process by enabling automated retrieval of radiology reports that cite critical imaging findings. However, IR tools that have been developed for one disease or imaging modality often need substantial reconfiguration before they can be utilized for another disease entity. Purpose: This paper: 1) describes the process of customizing two Natural Language Processing (NLP) and Information Retrieval/Extraction applications – an open-source toolkit, A Nearly New Information Extraction system (ANNIE); and an application developed in-house, Information for Searching Content with an Ontology-Utilizing Toolkit (iSCOUT) – to illustrate the varying levels of customization required for different disease entities and; 2) evaluates each application’s performance in identifying and retrieving radiology reports citing critical imaging findings for three distinct diseases, pulmonary nodule, pneumothorax, and pulmonary embolus. Results: Both applications can be utilized for retrieval. iSCOUT and ANNIE had precision values between 0.90-0.98 and recall values between 0.79 and 0.94. ANNIE had consistently higher precision but required more customization. Conclusion: Understanding the customizations involved in utilizing NLP applications for various diseases will enable users to select the most suitable tool for specific tasks.

Publisher

Bentham Science Publishers Ltd.

Cited by 8 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. Automatic detection of actionable findings and communication mentions in radiology reports using natural language processing;European Radiology;2022-01-06

2. Workflow Applications of Artificial Intelligence in Radiology and an Overview of Available Tools;Journal of the American College of Radiology;2020-11

3. Framework for Extracting Critical Findings in Radiology Reports;Journal of Digital Imaging;2020-05-29

4. Semiautomated System for Nonurgent, Clinically Significant Pathology Results;Applied Clinical Informatics;2018-04

5. Special Issue;Proceedings of the 2nd International Conference on Medical and Health Informatics - ICMHI '18;2018

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