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基于空间化粒子群的建筑空间利用率优化算法 被引量:1
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作者 陈柯 雷光明 张丞韫 《电子设计工程》 2020年第21期47-50,55,共5页
针对传统建筑空间配置模型无法满足建筑空间特征优化的问题,文中提出了基于空间化粒子群的建筑空间利用率优化算法,以解决空间优化配置问题。首先针对空间优化配置问题,根据建筑空间特征进行粒子群算法的空间化改进,并采用符号编码方法... 针对传统建筑空间配置模型无法满足建筑空间特征优化的问题,文中提出了基于空间化粒子群的建筑空间利用率优化算法,以解决空间优化配置问题。首先针对空间优化配置问题,根据建筑空间特征进行粒子群算法的空间化改进,并采用符号编码方法进行空间单元的空间化编码;其次使用最大标准化法进行数据处理,归纳影响空间利用率的因素,并从经济效益、社会效益及生态效益三个方面给出建筑空间优化配置的目标函数;最终通过分析主从并行模型与点对点并行模型的优缺点,提出了链式并行结构。通过数据仿真测试实验,验证了链式并行模型具有较高适应度、收敛速度与较短的运行时间,性能要优于另外两种,表明文中所提出的优化算法具有良好的性能。 展开更多
关键词 空间化粒子群 建筑空间利用率 符号编码 最大标准 链式并行模型 主从并行模型 点对点并行模型
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Rural land use spatial allocation in the semiarid loess hilly area in China:Using a Particle Swarm Optimization model equipped with multi-objective optimization techniques 被引量:24
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作者 LIU YaoLin LIU DianFeng +4 位作者 LIU YanFang HE JianHua JIAO LiMin CHEN YiYun HONG XiaoFeng 《Science China Earth Sciences》 SCIE EI CAS 2012年第7期1166-1177,共12页
Semiarid loess hilly areas in China are enduring a series of environmental conflicts between urban expansion,cultivated land conservation,soil erosion and water shortage,and require land use allocation to reconcile th... Semiarid loess hilly areas in China are enduring a series of environmental conflicts between urban expansion,cultivated land conservation,soil erosion and water shortage,and require land use allocation to reconcile these environmental conflicts.We argue that the optimized spatial allocation of rural land use can be achieved by a Particle Swarm Optimization (PSO) model in conjunction with multi-objective optimization techniques.Our study focuses on Yuzhong County of Gangsu Province in China,a typical catchment on the Loess Plateau,and proposes a land use spatial optimization model.The model maximizes land use suitability and spatial compactness based on a variety of constraints,e.g.optimal land use structure and restrictive areas,and employs an improved PSO algorithm equipped with a determinant initialization method and a dynamic weighted aggregation (DWA) method to obtain the optimized land use spatial pattern.The results suggest that (1) approximately 4% of land use should be reallocated and these changes would alleviate the environmental conflicts in the study area;(2) the major reshuffling is slope farmland and newly added construction and cultivated land,whereas the unchanged areas are largely forests and basic farmland;and (3) the PSO is capable of optimizing rural land use allocation,and the determinant initialization method and DWA can improve the performance of the PSO. 展开更多
关键词 spatial allocation rural land use particle swarm optimization multi-objective optimization Loess Plateau
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