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Evaluating the performance of microarray segmentation algorithms

机译:评估微阵列分割算法的性能

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Motivation: Although numerous algorithms have been developed for microarray segmentation, extensive comparisons between the algorithms have acquired far less attention. In this study, we evaluate the performance of nine microarray segmentation algorithms. Using both simulated and real microarray experiments, we overcome the challenges in performance evaluation, arising from the lack of ground-truth information. The usage of simulated experiments allows us to analyze the segmentation accuracy on a single pixel level as is commonly done in traditional image processing studies. With real experiments, we indirectly measure the segmentation performance, identify significant differences between the algorithms, and study the characteristics of the resulting gene expression data. Results: Overall, our results show clear differences between the algorithms. The results demonstrate how the segmentation performance depends on the image quality, which algorithms operate on significantly different performance levels, and how the selection of a segmentation algorithm affects the identification of differentially expressed genes.
机译:动机:尽管已经开发了许多用于微阵列分割的算法,但是算法之间的广泛比较却很少受到关注。在这项研究中,我们评估了九种微阵列分割算法的性能。通过使用模拟和真实的微阵列实验,我们克服了由于缺乏真实信息而导致的性能评估难题。模拟实验的使用使我们能够像传统图像处理研究中通常所做的那样,在单个像素级别上分析分割精度。通过实际实验,我们间接测量了分割性能,确定了算法之间的显着差异,并研究了所得基因表达数据的特征。结果:总的来说,我们的结果表明算法之间存在明显差异。结果证明了分割性能如何取决于图像质量,哪些算法在明显不同的性能水平上运行,以及分割算法的选择如何影响差异表达基因的鉴定。

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