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混合优化人工免疫网络用于过程动态优化 被引量:8
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作者 林可鸿 贺益君 陈德钊 《浙江大学学报(工学版)》 EI CAS CSCD 北大核心 2008年第12期2181-2186,共6页
常见的用于求解过程动态优化的方法局部寻优能力强,易陷入局部点;而优化人工免疫网络虽局部寻优能力弱,但不易陷入局部点.针对这些方法的不足,提出了一种新的算法——混合优化人工免疫网络,将优化人工免疫网络植入局部寻优操作和二次响... 常见的用于求解过程动态优化的方法局部寻优能力强,易陷入局部点;而优化人工免疫网络虽局部寻优能力弱,但不易陷入局部点.针对这些方法的不足,提出了一种新的算法——混合优化人工免疫网络,将优化人工免疫网络植入局部寻优操作和二次响应机制,应用于Park-Ramirez和Lee-Ramirez生物反应器,此算法能以较少的计算代价搜索到最佳控制策略.将其用于模型参数发生变化的Lee-Ramirez生物反应器,实验结果表明,此算法的二次响应机制可以节省85%的评价次数. 展开更多
关键词 人工免疫系统 优化人工免疫网络 动态优化 生物反应器
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基于人工免疫优化神经网络的输变电工程造价评估 被引量:15
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作者 王晓建 朱婷涵 +1 位作者 劳咏昶 黄丽丽 《浙江电力》 2018年第7期62-67,共6页
提出了基于人工免疫优化神经网络的输变电工程造价评估模型,该模型以输变电工程造价影响因素为输入变量,造价评估值为输出值,利用人工神经网络在小样本学习领域的优越性,结合人工免疫全局参数优化算法,实现稳定有效的输变电工程造价评估... 提出了基于人工免疫优化神经网络的输变电工程造价评估模型,该模型以输变电工程造价影响因素为输入变量,造价评估值为输出值,利用人工神经网络在小样本学习领域的优越性,结合人工免疫全局参数优化算法,实现稳定有效的输变电工程造价评估,用以对工程造价管理进行指导。 展开更多
关键词 输变电工程 人工免疫优化神经网络 造价评估 评估模型
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A new artificial immune algorithm and its application for optimization problems 被引量:1
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作者 于志刚 宋申民 段广仁 《Journal of Harbin Institute of Technology(New Series)》 EI CAS 2006年第2期129-133,共5页
A new artificial immune algorithm (AIA) simulating the biological immune network system with selfadjustment function is proposed in this paper. AIA is based on the modified immune network model in which two methods ... A new artificial immune algorithm (AIA) simulating the biological immune network system with selfadjustment function is proposed in this paper. AIA is based on the modified immune network model in which two methods of affinity measure evaluated are used, controlling the antibody diversity and the speed of convergence separately. The model proposed focuses on a systemic view of the immune system and takes into account cell-cell interactions denoted by antibody affinity. The antibody concentration defined in the immune network model is responsible directly for its activity in the immune system. The model introduces not only a term describing the network dynamics, but also proposes an independent term to simulate the dynamics of the antigen population. The antibodies' evolutionary processes are controlled in the algorithms by utilizing the basic properties of the immune network. Computational amount and effect is a pair of contradictions. In terms of this problem, the AIA regulating the parameters easily attains a compromise between them. At the same time, AIA can prevent premature convergence at the cost of a heavy computational amount (the iterative times). Simulation illustrates that AIA is adapted to solve optimization problems, emphasizing muhimodal optimization. 展开更多
关键词 artificial immune network optimization algorithm preventing premature convergence.
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