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Evolving stochastic context--free grammars for RNA secondary structure prediction

机译:不断发展的随机上下文无关文法,用于RNA二级结构预测

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摘要

Background: Stochastic Context-Free Grammars (SCFGs) were applied successfully to RNA secondary structure prediction in the early 90s, and used in combination with comparative methods in the late 90s. The set of SCFGs potentially useful for RNA secondary structure prediction is very large, but a few intuitively designed grammars have remained dominant. In this paper we investigate two automatic search techniques for effective grammars - exhaustive search for very compact grammars and an evolutionary algorithm to find larger grammars. We also examine whether grammar ambiguity is as problematic to structure prediction as has been previously suggested.Results: These search techniques were applied to predict RNA secondary structure on a maximal data set and revealed new and interesting grammars, though none are dramatically better than classic grammars. In general, results showed that many grammars with quite different structure could have very similar predictive ability. Many ambiguous grammars were found which were at least as effective as the best current unambiguous grammars.Conclusions: Overall the method of evolving SCFGs for RNA secondary structure prediction proved effective in finding many grammars that had strong predictive accuracy, as good or slightly better than those designed manually. Furthermore, several of the best grammars found were ambiguous, demonstrating that such grammars should not be disregarded. © 2012 Anderson et al.; licensee BioMed Central Ltd.
机译:背景:随机上下文无关文法(SCFGs)在90年代初已成功用于RNA二级结构预测,并在90年代后期与比较方法结合使用。可能对RNA二级结构预测有用的SCFG集合很大,但是一些直观设计的语法仍然占主导地位。在本文中,我们研究了两种用于有效语法的自动搜索技术-穷举搜索非常紧凑的语法和一种进化算法来查找更大的语法。结果:这些搜索技术被用于预测最大数据集上的RNA二级结构,并揭示了新的有趣的语法,尽管没有一个比经典语法好得多了。 。总体而言,结果表明,许多结构完全不同的语法可以具有非常相似的预测能力。结论:总体而言,进化SCFGs进行RNA二级结构预测的方法被证明可以有效地找到许多具有很强预测准确性的语法,这些语法的准确性好于或略优于那些语法。手动设计。此外,发现的几种最佳语法是模棱两可的,表明此类语法不应被忽略。 ©2012 Anderson等;被许可人BioMed Central Ltd.

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