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Protein Classification Using Artificial Neural Networks with Different Protein Encoding Methods

机译:蛋白质分类使用具有不同蛋白质编码方法的人工神经网络

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The fast growth of annotated biological data implies in the need of developing new techniques and tools to classify these data, in such way that they can be useful. Protein classification is one relevant task in this context. This paper presents different models of neural network, aiming to compare the influence of the protein sequence encoding method in the performance of the Neural network to classify proteins. Besides, it is proposed two methods of protein sequence encoding, that were tested with several neural network, for classifying proteins using two approaches: based on families of proteins and based on function of proteins. The results of performance of the neural networks are presented and compared with other works in the area.
机译:注释的生物数据的快速增长意味着需要开发新技术和工具来对这些数据进行分类,以便它们可以是有用的。蛋白质分类是在这方面的一个相关任务。本文呈现了不同型号的神经网络,旨在比较蛋白质序列编码方法在神经网络性能下进行分类蛋白质的影响。此外,提出了两种蛋白质序列编码方法,其用几种神经网络测试,用于使用两种方法进行分类蛋白质:基于蛋白质的家族并基于蛋白质的功能。提出了神经网络的性能结果,并与该地区的其他作品进行了比较。

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