Evaluating the informatics for integrating biology and the bedside system for clinical research

<p>Abstract</p> <p>Background</p> <p>Selecting patient cohorts is a critical, iterative, and often time-consuming aspect of studies involving human subjects; informatics tools for helping streamline the process have been identified as important infrastructure components...

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Main Authors: Meystre Stéphane M, Deshmukh Vikrant G, Mitchell Joyce A
Format: Article
Language:English
Published: BMC 2009-10-01
Series:BMC Medical Research Methodology
Online Access:http://www.biomedcentral.com/1471-2288/9/70
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spelling doaj-155a2bb190964806aead42de4b7a4e162020-11-25T02:28:17ZengBMCBMC Medical Research Methodology1471-22882009-10-01917010.1186/1471-2288-9-70Evaluating the informatics for integrating biology and the bedside system for clinical researchMeystre Stéphane MDeshmukh Vikrant GMitchell Joyce A<p>Abstract</p> <p>Background</p> <p>Selecting patient cohorts is a critical, iterative, and often time-consuming aspect of studies involving human subjects; informatics tools for helping streamline the process have been identified as important infrastructure components for enabling clinical and translational research. We describe the evaluation of a free and open source cohort selection tool from the Informatics for Integrating Biology and the Bedside (i2b2) group: the i2b2 hive.</p> <p>Methods</p> <p>Our evaluation included the usability and functionality of the i2b2 hive using several real world examples of research data requests received electronically at the University of Utah Health Sciences Center between 2006 - 2008. The hive server component and the visual query tool application were evaluated for their suitability as a cohort selection tool on the basis of the types of data elements requested, as well as the effort required to fulfill each research data request using the i2b2 hive alone.</p> <p>Results</p> <p>We found the i2b2 hive to be suitable for obtaining estimates of cohort sizes and generating research cohorts based on simple inclusion/exclusion criteria, which consisted of about 44% of the clinical research data requests sampled at our institution. Data requests that relied on post-coordinated clinical concepts, aggregate values of clinical findings, or temporal conditions in their inclusion/exclusion criteria could not be fulfilled using the i2b2 hive alone, and required one or more intermediate data steps in the form of pre- or post-processing, modifications to the hive metadata, etc.</p> <p>Conclusion</p> <p>The i2b2 hive was found to be a useful cohort-selection tool for fulfilling common types of requests for research data, and especially in the estimation of initial cohort sizes. For another institution that might want to use the i2b2 hive for clinical research, we recommend that the institution would need to have structured, coded clinical data and metadata available that can be transformed to fit the logical data models of the i2b2 hive, strategies for extracting relevant clinical data from source systems, and the ability to perform substantial pre- and post-processing of these data.</p> http://www.biomedcentral.com/1471-2288/9/70
collection DOAJ
language English
format Article
sources DOAJ
author Meystre Stéphane M
Deshmukh Vikrant G
Mitchell Joyce A
spellingShingle Meystre Stéphane M
Deshmukh Vikrant G
Mitchell Joyce A
Evaluating the informatics for integrating biology and the bedside system for clinical research
BMC Medical Research Methodology
author_facet Meystre Stéphane M
Deshmukh Vikrant G
Mitchell Joyce A
author_sort Meystre Stéphane M
title Evaluating the informatics for integrating biology and the bedside system for clinical research
title_short Evaluating the informatics for integrating biology and the bedside system for clinical research
title_full Evaluating the informatics for integrating biology and the bedside system for clinical research
title_fullStr Evaluating the informatics for integrating biology and the bedside system for clinical research
title_full_unstemmed Evaluating the informatics for integrating biology and the bedside system for clinical research
title_sort evaluating the informatics for integrating biology and the bedside system for clinical research
publisher BMC
series BMC Medical Research Methodology
issn 1471-2288
publishDate 2009-10-01
description <p>Abstract</p> <p>Background</p> <p>Selecting patient cohorts is a critical, iterative, and often time-consuming aspect of studies involving human subjects; informatics tools for helping streamline the process have been identified as important infrastructure components for enabling clinical and translational research. We describe the evaluation of a free and open source cohort selection tool from the Informatics for Integrating Biology and the Bedside (i2b2) group: the i2b2 hive.</p> <p>Methods</p> <p>Our evaluation included the usability and functionality of the i2b2 hive using several real world examples of research data requests received electronically at the University of Utah Health Sciences Center between 2006 - 2008. The hive server component and the visual query tool application were evaluated for their suitability as a cohort selection tool on the basis of the types of data elements requested, as well as the effort required to fulfill each research data request using the i2b2 hive alone.</p> <p>Results</p> <p>We found the i2b2 hive to be suitable for obtaining estimates of cohort sizes and generating research cohorts based on simple inclusion/exclusion criteria, which consisted of about 44% of the clinical research data requests sampled at our institution. Data requests that relied on post-coordinated clinical concepts, aggregate values of clinical findings, or temporal conditions in their inclusion/exclusion criteria could not be fulfilled using the i2b2 hive alone, and required one or more intermediate data steps in the form of pre- or post-processing, modifications to the hive metadata, etc.</p> <p>Conclusion</p> <p>The i2b2 hive was found to be a useful cohort-selection tool for fulfilling common types of requests for research data, and especially in the estimation of initial cohort sizes. For another institution that might want to use the i2b2 hive for clinical research, we recommend that the institution would need to have structured, coded clinical data and metadata available that can be transformed to fit the logical data models of the i2b2 hive, strategies for extracting relevant clinical data from source systems, and the ability to perform substantial pre- and post-processing of these data.</p>
url http://www.biomedcentral.com/1471-2288/9/70
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