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Evaluating the performance of watershed and morphology on microarray spot segmentation

机译:评估分水岭和形态对微阵列斑点分割的性能

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Microarrays are novel and dominant techniques that are being made use in the analysis of the expression level of DNA, with pharmacology, medical diagnosis, environmental engineering, and biological sciences being its current applications. Studies on microarray have shown that image processing techniques can considerably influence the precision of microarray data. A crucial issue identified in gene microarray data analysis is to perform accurate quantification of spot shapes and intensities of microarray image. Segmentation methods that have been employed in microarray analysis are a vital source of variability in microarray data that directly affects precision and the identification of differentially expressed genes. The effect of different segmentation methods on the variability of data derived from microarray images has been overlooked. This article proposes a methodology to investigate the accuracy of spot segmentation of a microarray image, using morphological image analysis techniques and watershed algorithm. The input to the methodology is a microarray image, which is then subjected to spotted microarray image preprocessing and gridding. Subsequently, the resulting microarray subgrid is segmented using morphological operators and also by means of the watershed algorithm. Based on the precision of segmentation and its intensity profile, a formal investigation of the two segmentation algorithms employed (morphological operators and watershed algorithm) is performed. The experimental results demonstrate the segmentation effectiveness of the proposed methodology and also the better of the two segmentation algorithms employed for segmentation.
机译:微阵列是在分析DNA表达水平的新颖和显性技术,具有药理学,医学诊断,环境工程和生物科学是其目前的应用。关于微阵列的研究表明,图像处理技术可以显着影响微阵列数据的精度。基因微阵列数据分析中鉴定的至关重要问题是对微阵列形状和微阵列图像的强度进行准确定量。在微阵列分析中使用的分段方法是微阵列数据中的重要变异来源,可直接影响精度和差异表达基因的鉴定。不同分割方法对从微阵列图像导出的数据变异的影响已经被忽略已经忽略了。本文提出了一种方法来研究使用形态图像分析技术和流域算法来研究微阵列图像的点分割的准确性。方法的输入是微阵列图像,然后经受斑点的微阵列图像预处理和网格。随后,使用形态算子和通过流域算法进行所得的微阵列亚级。基于分割的精度及其强度分布,进行了所采用的两个分段算法的正式研究(形态运算符和流域算法)。实验结果表明了所提出的方法的分割效果以及用于分割的两个分段算法的更好。

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