Interactive Exploration of Longitudinal Cancer Patient Histories Extracted From Clinical Text

Author:

Yuan Zhou1,Finan Sean2,Warner Jeremy3,Savova Guergana2,Hochheiser Harry1

Affiliation:

1. University of Pittsburgh, Pittsburgh, PA

2. Boston Children’s Hospital, Boston, MA

3. Vanderbilt University, Nashville, TN

Abstract

PURPOSERetrospective cancer research requires identification of patients matching both categorical and temporal inclusion criteria, often on the basis of factors exclusively available in clinical notes. Although natural language processing approaches for inferring higher-level concepts have shown promise for bringing structure to clinical texts, interpreting results is often challenging, involving the need to move between abstracted representations and constituent text elements. Our goal was to build interactive visual tools to support the process of interpreting rich representations of histories of patients with cancer.METHODSQualitative inquiry into user tasks and goals, a structured data model, and an innovative natural language processing pipeline were used to guide design.RESULTSThe resulting information visualization tool provides cohort- and patient-level views with linked interactions between components.CONCLUSIONInteractive tools hold promise for facilitating the interpretation of patient summaries and identification of cohorts for retrospective research.

Publisher

American Society of Clinical Oncology (ASCO)

Subject

General Medicine

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