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Protein structural domain parsing by consensus reasoning over multiple knowledge sources and methods.

机译:蛋白质结构领域通过多种知识来源和方法共识推理解析。

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Domain parsing, or the detection of signals of protein structural domains from sequence data, is a complex and difficult problem. If carried out reliably it would be a powerful interpretive and predictive tool for genomic and proteomic studies. We report on a novel approach to domain parsing using consensus techniques based on Hidden Markov Models (HMMs) and BLAST searches built from a training set of 1471 continuous structural domains from the Dali Domain Dictionary (DDD). Validation on an independent test sample of family-matched structural domain sequences from the Scop database yields a consensus prediction performance rate of 75.5%, well above the 58% obtained by simple agreement of methods.
机译:域解析或蛋白质结构域的信号从序列数据检测,是一个复杂和难题的问题。如果可靠地进行,这将是基因组和蛋白质组学研究的强大的解读工具。我们通过基于隐马尔可夫模型(HMMS)的共识技术(HMMS)和Blast搜索从DALI域字典(DDD)的训练组建立的训练组建立的爆炸搜查报告了一种新的域解析方法。从SCOP数据库的家庭匹配结构域序列的独立测试样本验证产生的共识预测性能率为75.5%,远高于58%通过简单的方法获得的58%。

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