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DeepImpute: an accurate fast and scalable deep neural network method to impute single-cell RNA-seq data

机译:DeepImpute:准确快速且可扩展的深度神经网络方法用于插补单细胞RNA-seq数据

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摘要

Single-cell RNA sequencing (scRNA-seq) offers new opportunities to study gene expression of tens of thousands of single cells simultaneously. We present DeepImpute, a deep neural network-based imputation algorithm that uses dropout layers and loss functions to learn patterns in the data, allowing for accurate imputation. Overall, DeepImpute yields better accuracy than other six publicly available scRNA-seq imputation methods on experimental data, as measured by the mean squared error or Pearson’s correlation coefficient. DeepImpute is an accurate, fast, and scalable imputation tool that is suited to handle the ever-increasing volume of scRNA-seq data, and is freely available at .
机译:单细胞RNA测序(scRNA-seq)为同时研究成千上万个单细胞的基因表达提供了新的机会。我们提出了DeepImpute,这是一种基于深度神经网络的插补算法,该算法使用辍学层和损失函数来学习数据中的模式,从而实现准确的插补。总体而言,通过均方误差或皮尔逊相关系数来衡量,DeepImpute在实验数据上的准确性优于其他六种可公开获得的scRNA-seq插补方法。 DeepImpute是一种准确,快速且可扩展的插补工具,适用于处理不断增长的scRNA-seq数据量,可从以下网站免费获得。

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