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A Novel Information Retrieval Model for High-Throughput Molecular Medicine Modalities

机译:高通量分子医学模式的新型信息检索模型

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Significant research has been devoted to predicting diagnosis, prognosis, and response to treatment using high- throughput assays. Rapid translation into clinical results hinges upon efficient access to up-to-date and high-quality molecular medicine modalities. We first explain why this goal is inadequately supported by existing databases and portals and then introduce a novel semantic indexing and information retrieval model for clinical bioinformatics. The formalism provides the means for indexing a variety of relevant objects (e.g. papers, algorithms, signatures, datasets) and includes a model of the research processes that creates and validates these objects in order to support their systematic presentation once retrieved. We test the applicability of the model by constructing proof-of-concept encodings and visual presentations of evidence and modalities in molecular profiling and prognosis of: (a) diffuse large B-cell lymphoma (DLBCL) and (b) breast cancer.
机译:大量研究致力于使用高通量分析方法预测诊断,预后以及对治疗的反应。快速转换为临床结果取决于有效地获取最新和高质量的分子医学模式。我们首先解释为什么现有数据库和门户网站无法充分支持该目标,然后介绍了用于临床生物信息学的新型语义索引和信息检索模型。形式主义提供了索引各种相关对象(例如论文,算法,签名,数据集)的方法,并包括创建和验证这些对象的研究过程模型,以支持一旦检索到它们的系统表示。我们通过构建概念证明编码以及分子概况和预后的证据和方式的视觉呈现来测试该模型的适用性:(a)弥漫性大B细胞淋巴瘤(DLBCL)和(b)乳腺癌。

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