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Stochastic modeling of RNA pseudoknotted structures: a grammatical approach

机译:RNA伪麻醉结构的随机造型:语法方法

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Motivation: Modeling RNA pseudoknotted structures remains challenging. Methods have previously been developed to model RNA stem-loops successfully using stochastic context-free grammars (SCFG) adapted from computational linguistics; however, the additional complexity of pseudoknots has made modeling them more difficult. Formally a context-sensitive grammar is required, which would impose a large increase in complexity. Results: We introduce a new grammar modeling approach for RNA pseudoknotted structures based on parallel communicating grammar systems (PCGS). Our new approach can specify pseudoknotted structures, while avoiding context-sensitive rules, using a single CFG synchronized with a number of regular grammars. Technically, the stochastic version of the grammar model can be as simple as an SCFG. As with SCFG, the new approach permits automatic generation of a single-RNA structure prediction algorithm for each specified pseudoknotted structure model. This approach also makes it possible to develop full probabilistic models of pseudoknotted structures to allow the prediction of consensus structures by comparative analysis and structural homology recognition in database searches. Availability: Prototypes for the automated pseudoknot prediction algorithm are available upon request.
机译:动机:建模RNA伪麻醉结构仍然具有挑战性。先前已经开发了使用从计算语言学改编的随机上下文的语法(SCFG)成功模拟RNA STEM-LOPS;然而,伪通知的额外复杂性使其更加困难。正式的是需要上下文敏感的语法,这将施加大幅度的复杂性。结果:我们介绍了基于并行通信语法系统(PCG)的RNA伪麻醉结构的新语法建模方法。我们的新方法可以指定伪影结构,同时避免使用与许多常规语法同步的单个CFG进行上下文敏感规则。从技术上讲,语法模型的随机版本可以像SCFG一样简单。与SCFG一样,新方法允许为每个指定的伪影式结构模型自动生成单RNA结构预测算法。这种方法还使得可以开发伪影结构的完整概率模型,以允许通过数据库搜索中的比较分析和结构同源性识别来预测共识结构。可用性:可根据要求提供自动伪通知预测算法的原型。

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