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Automatic segmentation and band detection of protein images based on the standard deviation profile and its derivative

机译:基于标准偏差分布及其衍生物的蛋白质图像自动分割和频段检测

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Gel electrophoresis has significantly influenced the progress achieved in genetic studies over the last decade. Image processing techniques that are commonly used to analyze gel electrophoresis images require mainly three steps: band detection, band matching, and quantification and comparison. Although several techniques have been proposed to fully automate all steps, errors in band detection and, hence, in quantification are still important issues to address. In order to detect bands, many techniques were used, including image segmentation. In this paper, we present two novel, fully-automated techniques based on the standard deviation and its derivative to perform segmentation and to detect protein bands. Results show that even for poor quality images with faint bands, segmentation and detection are highly accurate.
机译:凝胶电泳显着影响了过去十年遗传研究中取得的进展。通常用于分析凝胶电泳图像的图像处理技术主要需要三个步骤:带检测,带匹配和量化和比较。虽然已经提出了几种技术来完全自动化所有步骤,但是频带检测中的错误,因此,在量化中仍然是解决的重要问题。为了检测频带,使用许多技术,包括图像分割。在本文中,我们基于标准偏差及其衍生物来进行两种新颖,全自动技术,以进行分段和检测蛋白质带。结果表明,即使对于具有微弱带的质量差,分割和检测也是高度准确的。

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