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DNA numerical representation and neural network based human promoter prediction system

机译:基于DNA数值表示和神经网络的人类启动子预测系统

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In spite of the recent development of computational methods for human promoter prediction, the prediction performance still needs improvement. In particular, the high false positive rate of the traditional approaches decreases the prediction reliability and leads to erroneous results in gene annotation. To improve the prediction accuracy and reliability, a DNA numerical representation and neural network based approach is studied for characterizing DNA alphabets in different regions of a DNA sequence. Three mapping functions are used for converting the DNA alphabets to numerical values so that discriminative biological features are extracted for promoter prediction. Simulations of the proposed system were carried out using a set of genomic sequences from the human chromosome 22 and it was found to achieve high sensitivity and specificity.
机译:尽管最近开发了用于人类启动子预测的计算方法,但是预测性能仍需要改进。特别地,传统方法的高假阳性率降低了预测的可靠性,并导致基因注释中的错误结果。为了提高预测准确性和可靠性,研究了一种基于DNA数值表示和神经网络的方法来表征DNA序列不同区域中的DNA字母。使用三个映射功能将DNA字母转换为数值,从而提取出具有区别性的生物学特征用于启动子预测。使用一组来自人类22号染色体的基因组序列进行了拟议系统的仿真,发现该系统具有很高的灵敏度和特异性。

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