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实现野生动物尸检数据的近实时使用:通过文本挖掘方法生成交互式仪表板显示。

Enabling near real time use of wildlife necropsy data: Text-mining approaches to derive interactive dashboard displays.

作者信息

Saverimuttu Stefan, McInnes Kate, Warren Kristin, Yeap Lian, Hunter Stuart, Gartrell Brett, Pas An, Chatterton James, Jackson Bethany

机构信息

New Zealand Center for Conservation Medicine, Auckland Zoo, Auckland, New Zealand.

Centre for Biosecurity and One Health, Harry Butler Institute, Murdoch University, Perth, Australia.

出版信息

PLoS One. 2025 Sep 19;20(9):e0331210. doi: 10.1371/journal.pone.0331210. eCollection 2025.

Abstract

Manual review of necropsy records through close reading and collation is a time-consuming process, leading to delays in knowledge acquisition, communication of findings, and subsequent actions. Text-mining techniques offer a means to reduce these barriers by automating the extraction of information from large volumes of free-text clinical reports, minimizing the need for manual review. Additionally, interactive dashboards enable end users to interrogate data dynamically, tailoring analyses to their specific needs and objectives. Here, we describe the principles underlying an application designed to extract and visualize information from free-text necropsy records within the Wildbase Pathology register. Reflecting the structure of a traditional necropsy review-where each record is examined in detail to identify and collate key observations-the application is divided into three sections. The first allows a user to upload a dataset in comma separated value format as downloaded from the Wildbase Pathology Register. A user can then filter and interrogate selected signalment variables of the population within this dataset. The second section uses established text-mining calculations of word correlations and Latent Dirichlet Allocation to generate visualisations to give a user a subjective sense of common themes found within the uploaded data. The third and final section uses a custom rule-based algorithm to identify and quantify positive occurrences of clinicopathologic findings as input by an end user. The foundational methods employed in this application have the potential for broader application in veterinary and medical pathology, facilitating more efficient and timely access to critical insights.

摘要

通过仔细阅读和核对来人工审查尸检记录是一个耗时的过程,会导致知识获取、结果传达及后续行动的延迟。文本挖掘技术提供了一种方法,可通过自动从大量自由文本临床报告中提取信息来减少这些障碍,从而将人工审查的需求降至最低。此外,交互式仪表板使终端用户能够动态查询数据,根据他们的特定需求和目标定制分析。在此,我们描述了一个应用程序的基本原理,该应用程序旨在从Wildbase病理学登记册中的自由文本尸检记录中提取信息并进行可视化。该应用程序反映了传统尸检审查的结构——对每份记录进行详细检查以识别和整理关键观察结果——分为三个部分。第一部分允许用户上传以逗号分隔值格式从Wildbase病理学登记册下载的数据集。然后用户可以过滤和查询该数据集中种群的选定信号变量。第二部分使用已建立的词相关性文本挖掘计算和潜在狄利克雷分配来生成可视化,让用户对上传数据中发现的共同主题有一个主观感受。第三部分也是最后一部分使用基于规则的自定义算法来识别和量化终端用户输入的临床病理结果的阳性出现情况。此应用程序中采用的基础方法有在兽医和医学病理学中更广泛应用的潜力,有助于更高效、及时地获取关键见解。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/92cd/12448955/7a403e74ac08/pone.0331210.g001.jpg

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