Predictive Modeling of Anatomy with Genetic and Clinical Data

October 09, 2020 ยท Entered Twilight ยท ๐Ÿ› International Conference on Medical Image Computing and Computer-Assisted Intervention

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Authors Adrian V. Dalca, Ramesh Sridharan, Mert R. Sabuncu, Polina Golland arXiv ID 2010.04757 Category cs.CV: Computer Vision Citations 7 Venue International Conference on Medical Image Computing and Computer-Assisted Intervention Repository https://github.com/adalca/voxelorb โญ 4 Last Checked 2 months ago
Abstract
We present a semi-parametric generative model for predicting anatomy of a patient in subsequent scans following a single baseline image. Such predictive modeling promises to facilitate novel analyses in both voxel-level studies and longitudinal biomarker evaluation. We capture anatomical change through a combination of population-wide regression and a non-parametric model of the subject's health based on individual genetic and clinical indicators. In contrast to classical correlation and longitudinal analysis, we focus on predicting new observations from a single subject observation. We demonstrate prediction of follow-up anatomical scans in the ADNI cohort, and illustrate a novel analysis approach that compares a patient's scans to the predicted subject-specific healthy anatomical trajectory. The code is available at https://github.com/adalca/voxelorb.
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