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Protein Secondary Structure Prediction Algorithm Based on Mixed-SVM Method
基于混合SVM方法的蛋白质二级结构预测算法

Keywords: Protein secondary structure prediction,Mixed-SVM method,Compound pyramid model
蛋白质二级结构预测,混合SVM方法,复合金字塔模型

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Abstract:

Protein secondary structure prediction is one of the most important problems in bioinformatics. I}he protein secondary structure prediction accuracy plays an important role in the field of protein structure research. In this paper, using a Knowledge Discovery Theory based on the Inner Cognitive Mechanism (KDTICM) , an efficient protein seconda- ry structure prediction algorithm based on mixed-SVM ( support vector machine) approach was proposed. The algo- rithm makes full use of the evolutionary information contained in the physicochemical properties of each amino acid and a position- specific scoring matrix generated by a PSI-SEARCH multiple sequence alignment, secondary structure can be predicted at significantly increased accuracy. At last, the experiments were used to show the superior accuracy and gen- erality of the new algorithm than other classical algorithm.

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