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Review
. 2016 Nov 1;382(1):110-117.
doi: 10.1016/j.canlet.2016.05.033. Epub 2016 May 27.

Big Data and machine learning in radiation oncology: State of the art and future prospects

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Review

Big Data and machine learning in radiation oncology: State of the art and future prospects

Jean-Emmanuel Bibault et al. Cancer Lett. .

Abstract

Precision medicine relies on an increasing amount of heterogeneous data. Advances in radiation oncology, through the use of CT Scan, dosimetry and imaging performed before each fraction, have generated a considerable flow of data that needs to be integrated. In the same time, Electronic Health Records now provide phenotypic profiles of large cohorts of patients that could be correlated to this information. In this review, we describe methods that could be used to create integrative predictive models in radiation oncology. Potential uses of machine learning methods such as support vector machine, artificial neural networks, and deep learning are also discussed.

Keywords: Big Data; Machine learning; Predictive model; Radiation oncology.

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