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Platform for Automated Real-Time High Performance Analytics on Medical Image Data.


ABSTRACT: Biomedical data are quickly growing in volume and in variety, providing clinicians an opportunity for better clinical decision support. Here, we demonstrate a robust platform that uses software automation and high performance computing (HPC) resources to achieve real-time analytics of clinical data, specifically magnetic resonance imaging (MRI) data. We used the Agave application programming interface to facilitate communication, data transfer, and job control between an MRI scanner and an off-site HPC resource. In this use case, Agave executed the graphical pipeline tool GRAphical Pipeline Environment (GRAPE) to perform automated, real-time, quantitative analysis of MRI scans. Same-session image processing will open the door for adaptive scanning and real-time quality control, potentially accelerating the discovery of pathologies and minimizing patient callbacks. We envision this platform can be adapted to other medical instruments, HPC resources, and analytics tools.

SUBMITTER: Allen WJ 

PROVIDER: S-EPMC5858700 | biostudies-literature | 2018 Mar

REPOSITORIES: biostudies-literature

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Platform for Automated Real-Time High Performance Analytics on Medical Image Data.

Allen William J WJ   Gabr Refaat E RE   Tefera Getaneh B GB   Pednekar Amol S AS   Vaughn Matthew W MW   Narayana Ponnada A PA  

IEEE journal of biomedical and health informatics 20180301 2


Biomedical data are quickly growing in volume and in variety, providing clinicians an opportunity for better clinical decision support. Here, we demonstrate a robust platform that uses software automation and high performance computing (HPC) resources to achieve real-time analytics of clinical data, specifically magnetic resonance imaging (MRI) data. We used the Agave application programming interface to facilitate communication, data transfer, and job control between an MRI scanner and an off-s  ...[more]

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