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On the robustness of SNPs filtering using computational intelligence

机译:论计算智能SNPS滤波的鲁棒性

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This work uses a filter based on neural networks to verify the mismatches in two Arabidopsis thaliana germplasm. Aiming to demonstrate the robustness and adaptability of the filter it will be applied in a reuse model context. The neural network filter previously defined and performed using the genome of an animal of the species Bos Taurus is used maintaining the main parameterization pre-defined to identify the SNPs on the mismatches detected in the reassembled germplasm. The experiments with the adapted filter in the new genome indicate that the quality and level of SNPs detection are preserved despite of the lack of a training process for this specific data.
机译:这项工作采用基于神经网络的过滤器来验证两种拟南芥种质中的不匹配。旨在展示滤波器的稳健性和适应性,它将应用于重用模型上下文中。先前使用物种Bos Taurus的动物的基因组定义和执行的神经网络滤波器维持预先定义的主要参数化以识别在重组地质中检测到的错配上的SNP。新基因组中适应过滤器的实验表明,尽管缺乏该特定数据的训练过程,但SNPS检测的质量和水平被保留。

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