2020
DOI: 10.1200/jco.2020.38.15_suppl.2051
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An automated EHR-based tool for identification of patients (pts) with metastatic disease to facilitate clinical trial pt ascertainment.

Abstract: 2051 Background: Efforts to facilitate patient identification for clinical trials in routine practice, such as automating electronic health record (EHR) data reviews, are hindered by the lack of information on metastatic status in structured format. We developed a machine learning tool that infers metastatic status from unstructured EHR data, and we describe its real-world implementation. Methods: This machine learning model scans EHR documents, extracting features from text snippets surrounding key words (ie… Show more

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Cited by 2 publications
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“…[52][53][54] Flatiron Health (a technology company) has also developed a machine learning model for identifying oncology patients with metastatic disease to better facilitate clinical trial matching. 55 Flatiron Health more broadly provides an oncology care technology platform that incorporates an electronic medical record and therefore easily accesses patient data for clinical trial matching. The aim of the OneOncology, which uses Flatiron Health technology, is to empower community oncologists and provide patients with care closer to home.…”
Section: Expanding Access To Treatmentmentioning
confidence: 99%
“…[52][53][54] Flatiron Health (a technology company) has also developed a machine learning model for identifying oncology patients with metastatic disease to better facilitate clinical trial matching. 55 Flatiron Health more broadly provides an oncology care technology platform that incorporates an electronic medical record and therefore easily accesses patient data for clinical trial matching. The aim of the OneOncology, which uses Flatiron Health technology, is to empower community oncologists and provide patients with care closer to home.…”
Section: Expanding Access To Treatmentmentioning
confidence: 99%