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Statistical estimation of gene expression using multiple laser scans of microarrays

机译:使用微阵列的多次激光扫描进行基因表达的统计估计

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We propose a statistical model for estimating gene expression using data from multiple laser scans at different settings of hybridized microarrays. A functional regression model is used, based on a non-linear relationship with both additive and multiplicative error terms. The function is derived as the expected value of a pixel, given that values are censored at 65 535, the maximum detectable intensity for double precision scanning software. Maximum likelihood estimation based on a Cauchy distribution is used to fit the model, which is able to estimate gene expressions taking account of outliers and the systematic bias caused by signal censoring of highly expressed genes. We have applied the method to experimental data. Simulation studies suggest that the model can estimate the true gene expression with negligible bias.
机译:我们提出了一个统计模型来估计基因表达,该模型使用了来自杂交芯片不同设置的多次激光扫描数据。基于具有加性和乘性误差项的非线性关系,使用了功能回归模型。假定在65 535(双精度扫描软件的最大可检测强度)处对值进行了检查,则该函数作为像素的期望值得出。使用基于柯西分布的最大似然估计来拟合模型,该模型能够考虑离群值和由高表达基因的信号审查引起的系统偏差来估计基因表达。我们已经将该方法应用于实验数据。仿真研究表明,该模型可以以很小的偏差估算出真实的基因表达。

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