首页> 外文会议>Pacific Symposium on Biocomputing 2004; Jan 6-10, 2004; Hawaii, USA >IDENTIFYING GOOD PREDICTIONS OF RNA SECONDARY STRUCTURE
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IDENTIFYING GOOD PREDICTIONS OF RNA SECONDARY STRUCTURE

机译:识别RNA二级结构的良好预测

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Predicting the secondary structure of RNA molecules from the knowledge of the primary structure (the sequence of bases) is still a challenging task. There are algorithms that provide good results e.g. based on the search for an energetic optimal configuration. However the output of such algorithms does not always give the real folding of the molecule and therefore a feature to judge the reliability of the prediction would be appreciated. In this paper we present results on the expected structural behavior of LSU rRNA derived using a stochastic context-free grammar and generating functions. We show how these results can be used to judge the predictions made for LSU rRNA by any algorithm. In this way it will be possible to identify those predictions which are close to the natural folding of the molecule with a probability of 97% of success.
机译:从一级结构(碱基序列)的知识预测RNA分子的二级结构仍然是一项艰巨的任务。有一些算法可以提供良好的结果,例如基于对能量最佳配置的搜索。然而,这种算法的输出并不总是能给出分子的真实折叠,因此可以理解一种判断预测可靠性的特征。在本文中,我们介绍了使用随机上下文无关文法和生成函数得出的LSU rRNA预期结构行为的结果。我们展示了如何使用这些结果来判断任何算法对LSU rRNA所做的预测。这样,将有可能以97%的成功概率识别出接近分子自然折叠的那些预测。

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