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基于BP神经网络组和DS证据理论的信用风险评估算法 被引量:4
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作者 郭英见 吴冲 于天军 《合肥工业大学学报(社会科学版)》 2009年第5期42-45,共4页
结合BP神经网络和DS证据理论,将其有效地结合应用于商业银行的信用评估中。该方法通过对信用风险的输入数据特征进行分类,建立BP网络组,对网络组的输出,建立对于各类信用度的基本概率分配函数,最后利用DS证据理论融合,从而实现信用风险... 结合BP神经网络和DS证据理论,将其有效地结合应用于商业银行的信用评估中。该方法通过对信用风险的输入数据特征进行分类,建立BP网络组,对网络组的输出,建立对于各类信用度的基本概率分配函数,最后利用DS证据理论融合,从而实现信用风险的最终决策。通过实际案例,验证了算法的可行性和有效性。 展开更多
关键词 bp神经网络组 信用风险 DS证据理论
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Prediction of the Helix/Sheet Content of Proteins from Their Primary Sequences by Neural Network Method
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作者 秦红珊 杨新岐 王克起 《Transactions of Tianjin University》 EI CAS 2002年第4期303-307,共4页
The amino acid composition and the biased auto-correlation function are considered as features, BP neural network algorithm is used to synthesize these features. The prediction accuracy of this method is verified by u... The amino acid composition and the biased auto-correlation function are considered as features, BP neural network algorithm is used to synthesize these features. The prediction accuracy of this method is verified by using the independent non-homologous protein database. It is shown that the average absolute errors for resubstitution test are 0.070 and 0.068 with the standard deviations 0.049 and 0.047 for the prediction of the content of α-helix and β-sheet respectively. For cross-validation test, the average absolute errors are 0.075 and 0.070 with the standard deviations 0.050 and 0.049 for the prediction of the content of α-helix and β-sheet respectively. Compared with the other methods currently available, the BP neural network method combined with the amino acid composition and the biased auto-correlation function features can effectively improve the prediction accuracy. 展开更多
关键词 content prediction of α-helix and β-sheet primary sequence bp neural network amino acid composition biased auto-correlation function
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