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风味蛋白酶水解合浦珠母贝肉制备抗菌肽人工神经网络法优化工艺 被引量:9
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作者 吴燕燕 宫晓静 +1 位作者 李来好 杨贤庆 《食品科学》 EI CAS CSCD 北大核心 2011年第20期63-68,共6页
利用具有自学习特点的人工神经网络可实现对酶解过程的模拟仿真,研究从合浦珠母贝肉中制备抗菌肽的最佳工艺条件。采用3层(5-9-3)人工神经网络法对风味蛋白酶水解合浦珠母贝肉的工艺过程进行模拟和优化,并通过管碟抑菌法对产物的抑菌性... 利用具有自学习特点的人工神经网络可实现对酶解过程的模拟仿真,研究从合浦珠母贝肉中制备抗菌肽的最佳工艺条件。采用3层(5-9-3)人工神经网络法对风味蛋白酶水解合浦珠母贝肉的工艺过程进行模拟和优化,并通过管碟抑菌法对产物的抑菌性质进行分析。结果表明:pH7.0、水解温度55℃、酶添加量1.6%、水解时间4h、料液比7:5,制备得到肽A,抑制鼠伤寒沙门氏菌最强,抑菌圈直径14.20mm,平均肽链长度2.6;pH7.0、水解温度55℃、酶添加量1.7%、水解时间4h、料液比3:2,制备得到肽B,抑制痢疾志贺氏菌最强,抑菌圈直径23.42mm,平均肽链长度2.8;pH6.5、水解温度60℃、酶添加量2.5%、水解时间4h、料液比7:5,制备得到肽C,对单核细胞增生李斯特菌的抑制效果最强,抑菌圈直径16.60mm,平均肽链长度2.5。3种抗菌肽对大肠杆菌、金黄色葡萄球菌也具有较强的抑菌效果,抑菌率为74.3%~80.8%。本研究利用人工神经网络优化制备的贝肉抗菌肽克服了纯度低、提取率低等缺点,为合浦珠母贝肉抗菌肽的开发利用提供技术支撑。 展开更多
关键词 合浦珠母贝肉 抗菌肽 制备 人工神经网络优化法
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Combining the genetic algorithms with artificial neural networks for optimization of board allocating 被引量:2
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作者 曹军 张怡卓 岳琪 《Journal of Forestry Research》 SCIE CAS CSCD 2003年第1期87-88,共2页
This paper introduced the Genetic Algorithms (GAs) and Artificial Neural Networks (ANNs), which have been widely used in optimization of allocating. The combination way of the two optimizing algorithms was used in boa... This paper introduced the Genetic Algorithms (GAs) and Artificial Neural Networks (ANNs), which have been widely used in optimization of allocating. The combination way of the two optimizing algorithms was used in board allocating of furniture production. In the experiment, the rectangular flake board of 3650 mm 1850 mm was used as raw material to allocate 100 sets of Table Bucked. The utilizing rate of the board reached 94.14 % and the calculating time was only 35 s. The experiment result proofed that the method by using the GA for optimizing the weights of the ANN can raise the utilizing rate of the board and can shorten the time of the design. At the same time, this method can simultaneously searched in many directions, thus greatly in-creasing the probability of finding a global optimum. 展开更多
关键词 Artificial neural network Genetic algorithms Back propagation model (BP model) OPTIMIZATION
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ANN Model and Learning Algorithm in Fault Diagnosis for FMS
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作者 史天运 王信义 +1 位作者 张之敬 朱小燕 《Journal of Beijing Institute of Technology》 EI CAS 1997年第4期45-53,共9页
The fault diagnosis model for FMS based on multi layer feedforward neural networks was discussed An improved BP algorithm,the tactic of initial value selection based on genetic algorithm and the method of network st... The fault diagnosis model for FMS based on multi layer feedforward neural networks was discussed An improved BP algorithm,the tactic of initial value selection based on genetic algorithm and the method of network structure optimization were presented for training this model ANN(artificial neural network)fault diagnosis model for the robot in FMS was made by the new algorithm The result is superior to the rtaditional algorithm 展开更多
关键词 fault diagnosis for FMS artificial neural network(ANN) improved BP algorithm optimization genetic algorithm learning speed
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