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SHARP: hyperfast and accurate processing of single-cell RNA-seq data via ensemble random projection

机译:SHARP:超快速准确地通过集合随机投影进行单细胞RNA-SEQ数据处理

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摘要

To process large-scale single-cell RNA-sequencing (scRNA-seq) data effectively without excessive distortion during dimension reduction, we present SHARP, an ensemble random projection-based algorithm that is scalable to clustering 10 million cells. Comprehensive benchmarking tests on 17 public scRNA-seq data sets show that SHARP outperforms existing methods in terms of speed and accuracy. Particularly, for large-size data sets (more than 40,000 cells), SHARP runs faster than other competitors while maintaining high clustering accuracy and robustness. To the best of our knowledge, SHARP is the only R-based tool that is scalable to clustering scRNA-seq data with 10 million cells.
机译:为了在尺寸减少期间有效地处理大规模的单细胞RNA测序(ScrNA-SEQ)数据而没有过度失真,我们呈现夏普,这是一种基于组合随机投影的算法,其可扩展到聚类1000万个细胞。 17个公共Scrna-SEQ数据集的全面基准测试显示,在速度和准确性方面急剧优于现有方法。特别是,对于大型数据集(超过40,000个单元),夏普比其他竞争对手更快地运行,同时保持高集群精度和鲁棒性。据我们所知,Sharp是唯一一个基于R的工具,可扩展到群集具有1000万个单元的ScrNA-SEQ数据。

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