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Feature-Based and String-Based Models for Predicting RNA-Protein Interaction

机译:基于特征和基于字符串的模型来预测RNA-蛋白质相互作用

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In this work, we study two approaches for the problem of RNA-Protein Interaction (RPI). In the first approach, we use a feature-based technique by combining extracted features from both sequences and secondary structures. The feature-based approach enhanced the prediction accuracy as it included much more available information about the RNA-protein pairs. In the second approach, we apply search algorithms and data structures to extract effective string patterns for prediction of RPI, using both sequence information (protein and RNA sequences), and structure information (protein and RNA secondary structures). This led to different string-based models for predicting interacting RNA-protein pairs. We show results that demonstrate the effectiveness of the proposed approaches, including comparative results against leading state-of-the-art methods. View Full-Text.
机译:在这项工作中,我们研究了两种解决RNA-蛋白质相互作用(RPI)问题的方法。在第一种方法中,我们通过结合从序列和二级结构提取的特征来使用基于特征的技术。基于特征的方法提高了预测准确性,因为它包含了有关RNA-蛋白质对的更多可用信息。在第二种方法中,我们利用序列信息(蛋白质和RNA序列)和​​结构信息(蛋白质和RNA二级结构),应用搜索算法和数据结构来提取有效的字符串模式以预测RPI。这导致用于预测相互作用的RNA-蛋白质对的基于字符串的模型不同。我们显示的结果证明了所提出方法的有效性,包括与领先的最新方法的比较结果。查看全文。

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