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ClOneHORT: Approaches for Improved Fidelity in Generative Models of Synthetic Genomes
Roland Laboulaye1, Victor Borda1,2, Shuo Chen2
1Institute for Genome Sciences, University of Maryland School of Medicine, Baltimore, 21201, USA.
Motivation:
Deep generative models have the potential to overcome difficulties in sharing individual-level genomic data by producing synthetic genomes that preserve the genomic associations specific to a cohort while not violating the privacy of any individual cohort member. However, there is significant room for improvement in the fidelity and usability of existing synthetic genome approaches.
Results:
We demonstrate that when combined with plentiful data and with population-specific selection criteria, deep generative models can produce synthetic genomes and cohorts that closely model the original populations. Our methods improve fidelity in the site-frequency spectra and linkage disequilibrium decay and yield synthetic genomes that can be substituted in downstream local ancestry inference analysis, recreating results with .91 to .94 accuracy.
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