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DIFFpop: a stochastic computational approach to simulate differentiation hierarchies with single cell barcoding

机译:差异:一种随机计算方法来模拟单个小区条形码的差分层次结构

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摘要

DIFFpop is an R package designed to simulate cellular differentiation hierarchies using either exponentially-expanding or fixed population sizes. The software includes functionalities to simulate clonal evolution due to the emergence of driver mutations under the infinite-allele assumption as well as options for simulation and analysis of single cell barcoding and labeling data. The software uses the Gillespie Stochastic Simulation Algorithm and a modification of expanding or fixed-size stochastic process models expanded to a large number of cell types and scenarios.
机译:DIFFPOP是一种R包,旨在使用指数展开或固定的人口尺寸模拟蜂窝分化层次结构。 该软件包括在无限等位基因假设下出现的驾驶员突变引起的克隆演化的功能以及单个细胞条形码和标记数据的模拟和分析的选项。 该软件使用Gillespie随机仿真算法和扩展或固定大小随机过程模型的修改扩展到大量的小区类型和场景。

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