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A fully automatic gridding method for cDNA microarray images

机译:cDNA微阵列图像的全自动网格化方法

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Background Processing cDNA microarray images is a crucial step in gene expression analysis, since any errors in early stages affect subsequent steps, leading to possibly erroneous biological conclusions. When processing the underlying images, accurately separating the sub-grids and spots is extremely important for subsequent steps that include segmentation, quantification, normalization and clustering. Results We propose a parameterless and fully automatic approach that first detects the sub-grids given the entire microarray image, and then detects the locations of the spots in each sub-grid. The approach, first, detects and corrects rotations in the images by applying an affine transformation, followed by a polynomial-time optimal multi-level thresholding algorithm used to find the positions of the sub-grids in the image and the positions of the spots in each sub-grid. Additionally, a new validity index is proposed in order to find the correct number of sub-grids in the image, and the correct number of spots in each sub-grid. Moreover, a refinement procedure is used to correct possible misalignments and increase the accuracy of the method. Conclusions Extensive experiments on real-life microarray images and a comparison to other methods show that the proposed method performs these tasks fully automatically and with a very high degree of accuracy. Moreover, unlike previous methods, the proposed approach can be used in various type of microarray images with different resolutions and spot sizes and does not need any parameter to be adjusted.
机译:背景处理cDNA微阵列图像是基因表达分析中的关键步骤,因为早期的任何错误都会影响后续步骤,从而可能导致错误的生物学结论。在处理基础图像时,准确分离子网格和斑点对于后续步骤(包括分割,量化,归一化和聚类)极为重要。结果我们提出了一种无参数的全自动方法,该方法首先在给定整个微阵列图像的情况下检测子网格,然后检测每个子网格中斑点的位置。该方法首先通过应用仿射变换来检测和校正图像中的旋转,然后使用多项式时间最优多级阈值算法查找图像中子网格的位置以及图像中的点的位置。每个子网格。另外,提出了新的有效性指标,以便在图像中找到正确数量的子网格以及每个子网格中的正确点数。而且,使用改进程序来校正可能的未对准并增加该方法的准确性。结论在现实生活中的微阵列图像上进行了广泛的实验,并与其他方法进行了比较,结果表明,所提出的方法可以完全自动且高度准确地执行这些任务。而且,与先前的方法不同,所提出的方法可以用于具有不同分辨率和斑点尺寸的各种类型的微阵列图像中,并且不需要任何参数来进行调整。

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