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首页> 外文期刊>IEEE Signal Processing Magazine >A signal processing application in genomic research: protein secondary structure prediction
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A signal processing application in genomic research: protein secondary structure prediction

机译:信号处理在基因组研究中的应用:蛋白质二级结构预测

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摘要

The digital nature of genomic information makes it suitable for the application of signal processing techniques to better analyze and understand the characteristics of DNA, proteins, and their interaction. Prediction of genes, protein structure, and protein function greatly utilize pattern recognition techniques, in which hidden Markov models, neural networks, and support vector machines play a central role. Signal processing offers a variety of methods from pattern recognition and network analysis for the diagnosis and therapy of genetic diseases. In this paper, we focus on protein secondary structure prediction and discuss the problems in single sequence setting.
机译:基因组信息的数字性质使其适合于信号处理技术的应用,以更好地分析和理解DNA,蛋白质及其相互作用的特性。基因,蛋白质结构和蛋白质功能的预测极大地利用了模式识别技术,其中隐藏的马尔可夫模型,神经网络和支持向量机发挥了核心作用。信号处理提供了从模式识别和网络分析到遗传疾病的诊断和治疗的多种方法。在本文中,我们专注于蛋白质二级结构预测,并讨论了单序列设置中的问题。

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