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SECURE GENOME CROWDSOURCING FOR LARGE-SCALE ASSOCIATION STUDIES

机译:大型协会研究的安全基因组众筹

摘要

Computationally-efficient techniques facilitate secure crowdsourcing of genomic and phenotypic data, e.g., for large-scale association studies. In one embodiment, a method begins by receiving, via a secret sharing protocol, genomic and phenotypic data of individual study participants. Another data set, comprising results of pre-computation over random number data, e.g., mutually independent and uniformly-distributed random numbers and results of calculations over those random numbers, is also received via secret sharing. A secure computation then is executed against the secretly-shared genomic and phenotypic data, using the secretly-shared results of the pre-computation over random number data, to generate a set of genome-wide association study (GWAS) statistics. For increased computational efficiency, at least a part of the computation is executed over dimensionality-reduced genomic data. The resulting GWAS statistics are then used to identify genetic variants that are statistically-correlated with a phenotype of interest.
机译:计算效率高的技术有助于对基因组和表型数据进行安全的众包,例如用于大规模关联研究。在一个实施例中,一种方法开始于通过秘密共享协议接收个体研究参与者的基因组和表型数据。还通过秘密共享来接收另一数据集,该数据集包括对随机数数据(例如,相互独立且均匀分布的随机数)进行预计算的结果以及对这些随机数的计算结果。然后,使用预先共享的随机结果对随机数数据的秘密共享结果,对秘密共享的基因组和表型数据执行安全计算,以生成一组全基因组关联研究(GWAS)统计数据。为了提高计算效率,至少一部分计算是在降维的基因组数据上执行的。然后,将所得的GWAS统计信息用于识别与目标表型在统计上相关的遗传变异。

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