Publication | Open Access
reGenotyper: Detecting mislabeled samples in genetic data
20
Citations
29
References
2017
Year
Genotype LabelsGenetic TestingGeneticsGenetic EpidemiologyGenomicsData CleaningGenetic AnalysisGenotype-phenotype AssociationMolecular EcologyComputational GenomicsBiostatisticsPublic HealthMolecular DiagnosticsVariant InterpretationPersonal GenomicsPotential MislabelingStatistical GeneticsGenetic VariationBioinformaticsGenetic DataSystems BiologyMedicine
In high-throughput molecular profiling studies, genotype labels can be wrongly assigned at various experimental steps; the resulting mislabeled samples seriously reduce the power to detect the genetic basis of phenotypic variation. We have developed an approach to detect potential mislabeling, recover the "ideal" genotype and identify "best-matched" labels for mislabeled samples. On average, we identified 4% of samples as mislabeled in eight published datasets, highlighting the necessity of applying a "data cleaning" step before standard data analysis.
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