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miRNAFinder: A pre-microRNA classifier for plants and analysis of feature impact

机译:mirnafinder:用于植物的MicroRNA分类器和特征影响分析

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MicroRNAs (miRNAs) are endogenous small noncoding RNAs that play an important role in post-transcriptional gene regulation. Several machine learning-based studies have been conducted for miRNA identification with the use of miRNA features. It is difficult to classify real and pseudo-pre-miRNAs in plant species than that in animals since plant pre-miRNAs are more diverse than the animal pre-miRNAs. Therefore, this study is focused on classifying real and pseudo precursor miRNAs (pre-miRNAs) in plants. We have introduced a machine learning model based on a 280 feature set including compositional, sequence-based, and thermodynamic features. Classification performance is tested and compared, considering different feature sets and four different classifiers. Random forest classifier results in the best classification performance with all 280 features with a 97% accuracy for the testing dataset.
机译:MicroRNA(miRNA)是内源性小型非编码RNA,其在转录后基因调节中起重要作用。已经进行了几种基于机器学习的研究,用于使用MiRNA特征进行miRNA鉴定。由于植物前MiRNA比动物预先生更多样化,难以将真实和伪前MIRNA分类而不是动物的植物物种。因此,本研究专注于对植物中的真实和伪前体miRNA(预先致MiRNA)进行分类。我们已经引入了一种基于280特征集的机器学习模型,包括组成,序列的和热力学特征。考虑不同特征集和四个不同的分类器,测试和比较分类性能。随机林分类器导致最佳分类性能,所有280个功能都具有97%的测试数据集的准确性。

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