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MIA: An Effective and Robust Microarray Image Analysis System with Unstructured Information Management Architecture

机译:MIA:具有非结构化信息管理架构的有效且强大的微阵列图像分析系统

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The proposed Microarray Image Analysis (MIA) system is designed to analyze microarray slide images in a fully automatic manner. This system identifies and rectifies tilted slides, discovers block boundaries, generates gridlines, recognizes spots, and finally extracts the accurate spot intensity values from the two image channels (red and green) in a microarray slide. The red-to-green intensity ratio of a spot represents the gene expression level in the specimen. Our experimental results demonstrate the effectiveness and robustness of the proposed system. Further, the MIA system is tightly integrated with the component-based Unstructured Information Management Architecture (UIMA) which is an open source platform for the analysis of unstructured data (e.g. images) and is developed by IBM. With UIMA, we can easily apply various analysis algorithms on data by simply plugging analysis components into the system. Further, the analysis results at each analyzing step are attached to the data object as its annotations. The major contribution of this paper is that we design a microarray image analysis system which provides users a convenient manner to automatically analyze slide images and acquire accurate gene expression data from microarray slides. Also, the proposed MIA system, which is based on UIMA, provides a flexible, scalable, and extensible environment for users to perform various analysis tasks on microarray slide images.
机译:提出的微阵列图像分析(MIA)系统旨在以全自动方式分析微阵列载玻片图像。该系统识别并纠正倾斜的载玻片,发现块边界,生成网格线,识别斑点,最后从微阵列载玻片的两个图像通道(红色和绿色)提取准确的斑点强度值。点的红绿强度比代表样本中的基因表达水平。我们的实验结果证明了所提出系统的有效性和鲁棒性。此外,MIA系统与基于组件的非结构化信息管理体系结构(UIMA)紧密集成,UIMA是用于分析非结构化数据(例如图像)的开源平台,由IBM开发。借助UIMA,我们只需将分析组件插入系统即可轻松地将各种分析算法应用于数据。此外,每个分析步骤的分析结果都附加到数据对象作为其注释。本文的主要贡献在于,我们设计了一种微阵列图像分析系统,可为用户提供一种方便的方式来自动分析载玻片图像并从微阵列载玻片获取准确的基因表达数据。而且,所提出的基于UIMA的MIA系统为用户提供了灵活,可扩展和可扩展的环境,使用户可以对微阵列载玻片图像执行各种分析任务。

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