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INSPIRE: An Integrated Agent Based System for Hypothesis Generation within Cancer Datasets

机译:激励:基于集成的代理系统,用于癌数据集中的假设生成

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Cancer research has become an extremely data rich environment, with huge batteries of tests performed to quantify and categorise tumours. Multiple analyses of biochemical, molecular and immunohistological markers on tissue samples generate large and complex data sets to compare with clinical and pathological parameters. The manual data analysis procedures by scientists have become impractical and automation is becoming the only method for complete and comprehensive analysis of the search space. To this end, a multi-agent system has been developed to automate the data analysis process. Project agents are tasked with overseeing the analysis. Initially, they create a list of hypotheses based on all parameters associated with the project. Agents then commence data collection and aggregation by directly interfacing with the various data sources. Conventional statistical tests can then be performed under agent control to determine the significance of these hypotheses. The final stage is to present collated results online. INSPIRE uses automated data retrieval and analysis on large and diverse cancer datasets to allow for the quick identification of significant results amongst the noise of the large dataset. This results in a more streamlined research process, which makes large cohort, multivariate projects easier to manage in a secure, user-friendly, web-based data management system.
机译:癌症研究已成为一种极其丰富的环境,具有巨大的测试电池进行量化和分类肿瘤。组织样品上的生物化学,分子和免疫组织标记物的多重分析产生大型和复杂的数据集,以与临床和病理参数进行比较。科学家的手动数据分析程序已成为不切实际和自动化正在成为对搜索空间完全和全面分析的唯一方法。为此,已经开发了一种多代理系统来自动化数据分析过程。项目代理人负责监督分析。最初,它们根据与项目关联的所有参数创建假设列表。然后,代理通过直接与各种数据源直接接地来实现数据收集和聚合。然后可以在试剂控制下进行常规统计测试以确定这些假设的重要性。最后阶段是在线呈现整理结果。 Inspire使用自动数据检索和对大型和不同癌症数据集的分析,以便在大型数据集的噪声中快速识别显着的结果。这导致更精简的研究过程,这使得大量队列,多变量项目在安全,用户友好的基于Web的数据管理系统中更易于管理。

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