The data for the study "GS-Impute: accurate genotype imputation via neural networks for across-population genomic selection with low-density markers"
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The data for the study "GS-Impute: accurate genotype imputation via neural networks for across-population genomic selection with low-density markers"Upon decompression, users will find:1. Rice and maize genotype datasets with systematic and sporadic missing patterns.2. Rice and maize genotype datasets before and after artificial missing simulation (named original_geno_file and unimputed genotype file respectively)3. Rice and maize genotype datasets with different missing rates (10%, 30% and 50%).4. Refined reference panels with redundant markers removed. Note: The original reference panels are available for download via the Plant-ImputeDB platform (https://gong_lab.hzau.edu.cn/Plant_imputeDB/#!/).
创建时间:
2025-07-26



