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Statistical models of shape for the analysis of protein spots in two-dimensional electrophoresis gel images

机译:用于分析二维电泳凝胶图像中蛋白质斑点的形状统计模型

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摘要

In image analysis of two-dimensional electrophoresis gels, individual spots need to be identified and quantified. Two classes of algorithms are commonly applied to this task. Parametric methods rely on a model, making strong assumptions about spot appearance, but are often insufficiently flexible to adequately represent all spots that may be present in a gel. Nonparametric methods make no assumptions about spot appearance and consequently impose few constraints on spot detection, allowing more flex-ability but reducing robustness when image data is complex. We describe a parametric representation of spot shape that is both general enough to represent unusual spots, and specific enough to introduce constraints on the interpretation of complex images. Our method uses a model of shape based on the statistics of an annotated training set. The model allows new spot shapes, belonging to the same statistical distribution as the training set, to be generated. To represent spot appearance we use the statistically derived shape convolved with a Gaussian kernel, simulating the diffusion process in spot formation. We show that the statistical model of spot appearance and shape is able to fit to image data more closely than the commonly used spot parameterizations based solely on Gaussian and diffusion models. We show that improvements in model fitting are gained without degrading the specificity of the representation.
机译:在二维电泳凝胶的图像分析中,需要识别和定量单个斑点。通常将两类算法应用于此任务。参数化方法依赖于模型,对斑点的外观做出有力的假设,但通常不够灵活,不足以充分代表凝胶中可能存在的所有斑点。非参数方法不对斑点外观进行任何假设,因此对斑点检测的约束很少,从而可以提供更大的灵活性,但在图像数据复杂时会降低鲁棒性。我们描述了斑点形状的参数化表示,它既足以表示不寻常的斑点,又足以表示对复杂图像的解释引入约束。我们的方法基于带注释的训练集的统计信息使用形状模型。该模型允许生成新的斑点形状,该形状与训练集具有相同的统计分布。为了表示斑点的外观,我们使用统计导出的形状与高斯核卷积,模拟斑点形成过程中的扩散过程。我们显示,斑点外观和形状的统计模型比仅基于高斯模型和扩散模型的常用斑点参数化方法更适合图像数据。我们表明,在不降低表示的特异性的前提下,可以获得模型拟合的改进。

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