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首页> 外文期刊>BMC Bioinformatics >Gene ARMADA: an integrated multi-analysis platform for microarray data implemented in MATLAB
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Gene ARMADA: an integrated multi-analysis platform for microarray data implemented in MATLAB

机译:Gene ARMADA基因:用于在MATLAB中实现的微阵列数据的集成多分析平台

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Background The microarray data analysis realm is ever growing through the development of various tools, open source and commercial. However there is absence of predefined rational algorithmic analysis workflows or batch standardized processing to incorporate all steps, from raw data import up to the derivation of significantly differentially expressed gene lists. This absence obfuscates the analytical procedure and obstructs the massive comparative processing of genomic microarray datasets. Moreover, the solutions provided, heavily depend on the programming skills of the user, whereas in the case of GUI embedded solutions, they do not provide direct support of various raw image analysis formats or a versatile and simultaneously flexible combination of signal processing methods. Results We describe here Gene ARMADA (Automated Robust MicroArray Data Analysis), a MATLAB implemented platform with a Graphical User Interface. This suite integrates all steps of microarray data analysis including automated data import, noise correction and filtering, normalization, statistical selection of differentially expressed genes, clustering, classification and annotation. In its current version, Gene ARMADA fully supports 2 coloured cDNA and Affymetrix oligonucleotide arrays, plus custom arrays for which experimental details are given in tabular form (Excel spreadsheet, comma separated values, tab-delimited text formats). It also supports the analysis of already processed results through its versatile import editor. Besides being fully automated, Gene ARMADA incorporates numerous functionalities of the Statistics and Bioinformatics Toolboxes of MATLAB. In addition, it provides numerous visualization and exploration tools plus customizable export data formats for seamless integration by other analysis tools or MATLAB, for further processing. Gene ARMADA requires MATLAB 7.4 (R2007a) or higher and is also distributed as a stand-alone application with MATLAB Component Runtime. Conclusion Gene ARMADA provides a highly adaptable, integrative, yet flexible tool which can be used for automated quality control, analysis, annotation and visualization of microarray data, constituting a starting point for further data interpretation and integration with numerous other tools.
机译:背景技术通过开发各种工具,包括开源和商业工具,微阵列数据分析领域正在不断发展。但是,没有预定义的合理算法分析工作流或批处理标准化处理来纳入所有步骤,从原始数据导入到派生显着差异表达的基因列表。这种缺乏混淆了分析程序,并阻碍了基因组微阵列数据集的大规模比较处理。而且,所提供的解决方案在很大程度上取决于用户的编程技能,而在GUI嵌入式解决方案的情况下,它们不提供各种原始图像分析格式的直接支持或信号处理方法的通用且灵活的组合。结果我们在这里描述Gene ARMADA(自动鲁棒微阵列数据分析),这是一个MATLAB实现的带有图形用户界面的平台。该套件集成了微阵列数据分析的所有步骤,包括自动数据导入,噪声校正和过滤,归一化,差异表达基因的统计选择,聚类,分类和注释。在当前版本中,Gene ARMADA完全支持2种彩色cDNA和Affymetrix寡核苷酸阵列,以及定制表格,这些表格的实验详细信息以表格形式提供(Excel电子表格,逗号分隔值,制表符分隔的文本格式)。它还通过其通用的导入编辑器支持对已处理结果的分析。除了完全自动化之外,Gene ARMADA还集成了MATLAB统计和生物信息学工具箱的众多功能。此外,它提供了许多可视化和探索工具以及可自定义的导出数据格式,以便与其他分析工具或MATLAB无缝集成,以进行进一步处理。 Gene ARMADA需要MATLAB 7.4(R2007a)或更高版本,并且还作为具有MATLAB组件运行时的独立应用程序进行分发。结论结论ARMADA基因提供了高度适应性强,集成性强且灵活的工具,可用于自动质量控制,分析,注释和可视化微阵列数据,为进一步解释数据和与众多其他工具集成提供了起点。

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