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One class support vector machine for predicting avian-to-human transmission of avian influenza A virus

机译:一类支持向量机预测禽流感的禽流感传播病毒

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Avian influenza A virus (AIV) can cross the host barrier to infect human directly and has continuously been reported to cause human death worldwide. Predicting which AIVs can directly transmit from avian to human will provide early warning of AIVs with human pandemic potential, which is beneficial to public health. Although it is easy to decide a dataset of AIVs having the capability of avian-to-human transmission as positive samples, there are no experimentally confirmed AIVs without the capability to be considered as negative samples. Therefore, in this study we utilized one-class support vector machines (OCSVM) to solve this one-class classification problem. With two feature sets including amino acid composition and Moran autocorrelation, an OCSVM-based prediction model was constructed and demonstrated to achieve good performances on both the training dataset and the external testing dataset. The experimental results imply that the model constructed on only positive samples (AIVs having the capability of avian-to-human transmission) is efficient to predict avian-to-human transmission of AIVs.
机译:禽流感,病毒(AIV)可以通过直接感染人类的​​宿主障碍,并持续据报道全世界造成人类死亡。预测哪些AIV可以直接从Avian传送到人类将提供具有人类大流行潜力的AIV的预警,这对公共卫生有益。虽然很容易决定具有禽流传输能力作为阳性样本的AIV的数据集,但没有实验证实的AIV,没有能力被视为阴性样品。因此,在本研究中,我们利用单级支持向量机(OCSVM)来解决这个单级分类问题。对于包括氨基酸组成和Moran自相关的两个特征集,构建了一种基于OCSVM的预测模型,并证明了在训练数据集和外部测试数据集上实现良好的性能。实验结果意味着仅在阳性样本(具有禽流传输能力的AIV)上构建的模型是有效的,以预测AIV的禽流传播。

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