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Optimizing wireless sensor network topology with node load consideration
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作者 Ruizhi CHEN 《虚拟现实与智能硬件(中英文)》 2025年第1期47-61,共15页
Background With the development of the Internet,the topology optimization of wireless sensor networks has received increasing attention.However,traditional optimization methods often overlook the energy imbalance caus... Background With the development of the Internet,the topology optimization of wireless sensor networks has received increasing attention.However,traditional optimization methods often overlook the energy imbalance caused by node loads,which affects network performance.Methods To improve the overall performance and efficiency of wireless sensor networks,a new method for optimizing the wireless sensor network topology based on K-means clustering and firefly algorithms is proposed.The K-means clustering algorithm partitions nodes by minimizing the within-cluster variance,while the firefly algorithm is an optimization algorithm based on swarm intelligence that simulates the flashing interaction between fireflies to guide the search process.The proposed method first introduces the K-means clustering algorithm to cluster nodes and then introduces a firefly algorithm to dynamically adjust the nodes.Results The results showed that the average clustering accuracies in the Wine and Iris data sets were 86.59%and 94.55%,respectively,demonstrating good clustering performance.When calculating the node mortality rate and network load balancing standard deviation,the proposed algorithm showed dead nodes at approximately 50 iterations,with an average load balancing standard deviation of 1.7×10^(4),proving its contribution to extending the network lifespan.Conclusions This demonstrates the superiority of the proposed algorithm in significantly improving the energy efficiency and load balancing of wireless sensor networks to extend the network lifespan.The research results indicate that wireless sensor networks have theoretical and practical significance in fields such as monitoring,healthcare,and agriculture. 展开更多
关键词 node load Wireless sensor network K-means clustering Firefly algorithm Topology optimization
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Optimization of Air Route Network Nodes to Avoid ″Three Areas″ Based on An Adaptive Ant Colony Algorithm 被引量:9
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作者 Wang Shijin Li Qingyun +1 位作者 Cao Xi Li Haiyun 《Transactions of Nanjing University of Aeronautics and Astronautics》 EI CSCD 2016年第4期469-478,共10页
Air route network(ARN)planning is an efficient way to alleviate civil aviation flight delays caused by increasing development and pressure for safe operation.Here,the ARN shortest path was taken as the objective funct... Air route network(ARN)planning is an efficient way to alleviate civil aviation flight delays caused by increasing development and pressure for safe operation.Here,the ARN shortest path was taken as the objective function,and an air route network node(ARNN)optimization model was developed to circumvent the restrictions imposed by″three areas″,also known as prohibited areas,restricted areas,and dangerous areas(PRDs),by creating agrid environment.And finally the objective function was solved by means of an adaptive ant colony algorithm(AACA).The A593,A470,B221,and G204 air routes in the busy ZSHA flight information region,where the airspace includes areas with different levels of PRDs,were taken as an example.Based on current flight patterns,a layout optimization of the ARNN was computed using this model and algorithm and successfully avoided PRDs.The optimized result reduced the total length of routes by 2.14% and the total cost by 9.875%. 展开更多
关键词 air route network planning three area avoidance optimization of air route network node adaptive ant colony algorithm grid environment
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Node deployment strategy optimization for wireless sensor network with mobile base station 被引量:7
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作者 龙军 桂卫华 《Journal of Central South University》 SCIE EI CAS 2012年第2期453-458,共6页
The optimization of network performance in a movement-assisted data gathering scheme was studied by analyzing the energy consumption of wireless sensor network with node uniform distribution. A theoretically analytica... The optimization of network performance in a movement-assisted data gathering scheme was studied by analyzing the energy consumption of wireless sensor network with node uniform distribution. A theoretically analytical method for avoiding energy hole was proposed. It is proved that if the densities of sensor nodes working at the same time are alternate between dormancy and work with non-uniform node distribution. The efficiency of network can increase by several times and the residual energy of network is nearly zero when the network lifetime ends. 展开更多
关键词 wireless sensor network mobile base station network optimization energy consumption balancing density ratio of sensor node network lifetime
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Node shift method for stiffness-based optimization of single-layer reticulated shells 被引量:2
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作者 Chang-yu CUI Bao-shi JIANG You-bao WANG 《Journal of Zhejiang University-Science A(Applied Physics & Engineering)》 SCIE EI CAS CSCD 2014年第2期97-107,共11页
This paper presents a node shift method to find the optimal distribution of nodes in single-layer reticulated shells. The optimization process searches for the minimum strain energy configuration and this leads to red... This paper presents a node shift method to find the optimal distribution of nodes in single-layer reticulated shells. The optimization process searches for the minimum strain energy configuration and this leads to reduced sensitivity in initial imper- fections. Strain energy sensitivity numbers are derived for free shift and restricted shift where nodes can move freely in the 3D space or have to move within a predefmed surface respectively. Numerical examples demonstrate the efficiency of the proposed approach. It was found that optimized structures achieve higher ultimate load and are less sensitive to imperfections than the initial structure. The configuration of the final structure is closely related to factors like the initial structural configuration, spatial conditions, etc. Based on different initial conditions, architects can be provided with diverse reasonable structures. Furthermore, by amending the defined shapes and nodal distributions, it is possible to improve the mechanical behavior of the structures. 展开更多
关键词 node shifts Strain energy sensitivity Structural optimization Static stability Imperfection sensitivity
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AModified Search and Rescue Optimization Based Node Localization Technique inWSN 被引量:1
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作者 Suma Sira Jacob K.Muthumayil +4 位作者 M.Kavitha Lijo Jacob Varghese M.Ilayaraja Irina V.Pustokhina Denis A.Pustokhin 《Computers, Materials & Continua》 SCIE EI 2022年第1期1229-1245,共17页
Wireless sensor network(WSN)is an emerging technology which find useful in several application areas such as healthcare,environmentalmonitoring,border surveillance,etc.Several issues that exist in the designing of WSN... Wireless sensor network(WSN)is an emerging technology which find useful in several application areas such as healthcare,environmentalmonitoring,border surveillance,etc.Several issues that exist in the designing of WSN are node localization,coverage,energy efficiency,security,and so on.In spite of the issues,node localization is considered an important issue,which intends to calculate the coordinate points of unknown nodes with the assistance of anchors.The efficiency of the WSN can be considerably influenced by the node localization accuracy.Therefore,this paper presents a modified search and rescue optimization based node localization technique(MSRONLT)forWSN.The major aim of theMSRO-NLT technique is to determine the positioning of the unknown nodes in theWSN.Since the traditional search and rescue optimization(SRO)algorithm suffers from the local optima problemwith an increase in number of iterations,MSRO algorithm is developed by the incorporation of chaotic maps to improvise the diversity of the technique.The application of the concept of chaotic map to the characteristics of the traditional SRO algorithm helps to achieve better exploration ability of the MSRO algorithm.In order to validate the effective node localization performance of the MSRO-NLT algorithm,a set of simulations were performed to highlight the supremacy of the presented model.A detailed comparative results analysis showcased the betterment of the MSRO-NLT technique over the other compared methods in terms of different measures. 展开更多
关键词 node localization WSN chaotic map search and rescue optimization algorithm localization error
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Behavior analysis of malicious sensor nodes based on optimal response dynamics 被引量:1
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作者 GONG Junhui HU Xiaohui HONG Peng 《Journal of Measurement Science and Instrumentation》 CAS CSCD 2022年第1期96-104,共9页
Wireless sensor networks are extremely vulnerable to various security threats.The intrusion detection method based on game theory can effectively balance the detection rate and energy consumption of the system.The acc... Wireless sensor networks are extremely vulnerable to various security threats.The intrusion detection method based on game theory can effectively balance the detection rate and energy consumption of the system.The accurate analysis of the attack behavior of malicious sensor nodes can help to configure intrusion detection system,reduce unnecessary system consumption and improve detection efficiency.However,the completely rational assumption of the traditional game model will cause the established model to be inconsistent with the actual attack and defense scenario.In order to formulate a reasonable and effective intrusion detection strategy,we introduce evolutionary game theory to establish an attack evolution game model based on optimal response dynamics,and then analyze the attack behavior of malicious sensor nodes.Theoretical analysis and simulation results show that the evolution trend of attacks is closely related to the number of malicious sensors in the network and the initial state of the strategy,and the attacker can set the initial strategy so that all malicious sensor nodes will eventually launch attacks.Our work is of great significance to guide the development of defense strategies for intrusion detection systems. 展开更多
关键词 wireless sensor network intrusion detection malicious node evolutionary game optimal response dynamics
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Trade-off in Optimizing Energy Consumption and End User Quality of Experience in Radio Access Network
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作者 徐月梅 王子厚 +1 位作者 李杨 蔡连侨 《Journal of Shanghai Jiaotong university(Science)》 EI 2017年第6期742-751,共10页
To reduce network access latency, network traffic volume and server load, caching capacity has been proposed as a component of evolved Node B(e Node B) in the ratio access network(RAN). These e Node B caches reduce tr... To reduce network access latency, network traffic volume and server load, caching capacity has been proposed as a component of evolved Node B(e Node B) in the ratio access network(RAN). These e Node B caches reduce transport energy consumption but lead to additional energy cost by equipping every e Node B with caching capacity. Existing researches focus on how to minimize total energy consumption, but often ignore the trade-off between energy efficiency and end user quality of experience, which may lead to undesired network performance degradation. In this paper, for the first time, we build an energy model to formulate the problem of minimizing total energy consumption at e Node B caches by taking a trade-off between energy efficiency and end user quality of experience. Through coordinating all the e Node B caches in the same RAN, the proposed model can take a good balance between caching energy and transport energy consumption while also guarantee end user quality of experience. The experimental results demonstrate the effectiveness of the proposed model. Compared with the existing works, our proposal significantly reduces the energy consumption by approximately 17% while keeps superior end user quality of experience performance. 展开更多
关键词 energy consumption optimization end user quality of experience evolved node B(e node B) cache
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Intelligent Aquila Optimization Algorithm-Based Node Localization Scheme for Wireless Sensor Networks
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作者 Nidhi Agarwal M.Gokilavani +4 位作者 S.Nagarajan S.Saranya Hadeel Alsolai Sami Dhahbi Amira Sayed Abdelaziz 《Computers, Materials & Continua》 SCIE EI 2023年第1期141-152,共12页
In recent times,wireless sensor network(WSN)finds their suitability in several application areas,ranging from military to commercial ones.Since nodes in WSN are placed arbitrarily in the target field,node localization... In recent times,wireless sensor network(WSN)finds their suitability in several application areas,ranging from military to commercial ones.Since nodes in WSN are placed arbitrarily in the target field,node localization(NL)becomes essential where the positioning of the nodes can be determined by the aid of anchor nodes.The goal of any NL scheme is to improve the localization accuracy and reduce the localization error rate.With this motivation,this study focuses on the design of Intelligent Aquila Optimization Algorithm Based Node Localization Scheme(IAOAB-NLS)for WSN.The presented IAOAB-NLS model makes use of anchor nodes to determine proper positioning of the nodes.In addition,the IAOAB-NLS model is stimulated by the behaviour of Aquila.The IAOAB-NLS model has the ability to accomplish proper coordinate points of the nodes in the network.For guaranteeing the proficient NL process of the IAOAB-NLS model,widespread experimentation takes place to assure the betterment of the IAOAB-NLS model.The resultant values reported the effectual outcome of the IAOAB-NLS model irrespective of changing parameters in the network. 展开更多
关键词 Aquila optimizer node localization WSN intelligent models unknown nodes anchor nodes
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An Optimal Node Localization in WSN Based on Siege Whale Optimization Algorithm
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作者 Thi-Kien Dao Trong-The Nguyen 《Computer Modeling in Engineering & Sciences》 SCIE EI 2024年第3期2201-2237,共37页
Localization or positioning scheme in Wireless sensor networks (WSNs) is one of the most challenging andfundamental operations in various monitoring or tracking applications because the network deploys a large areaand... Localization or positioning scheme in Wireless sensor networks (WSNs) is one of the most challenging andfundamental operations in various monitoring or tracking applications because the network deploys a large areaand allocates the acquired location information to unknown devices. The metaheuristic approach is one of themost advantageous ways to deal with this challenging issue and overcome the disadvantages of the traditionalmethods that often suffer from computational time problems and small network deployment scale. This studyproposes an enhanced whale optimization algorithm that is an advanced metaheuristic algorithm based on thesiege mechanism (SWOA) for node localization inWSN. The objective function is modeled while communicatingon localized nodes, considering variables like delay, path loss, energy, and received signal strength. The localizationapproach also assigns the discovered location data to unidentified devices with the modeled objective functionby applying the SWOA algorithm. The experimental analysis is carried out to demonstrate the efficiency of thedesigned localization scheme in terms of various metrics, e.g., localization errors rate, converges rate, and executedtime. Compared experimental-result shows that theSWOA offers the applicability of the developed model forWSNto perform the localization scheme with excellent quality. Significantly, the error and convergence values achievedby the SWOA are less location error, faster in convergence and executed time than the others compared to at least areduced 1.5% to 4.7% error rate, and quicker by at least 4%and 2% in convergence and executed time, respectivelyfor the experimental scenarios. 展开更多
关键词 node localization whale optimization algorithm wireless sensor networks siege whale optimization algorithm optimIZATION
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Fuzzy Fruit Fly Optimized Node Quality-Based Clustering Algorithm for Network Load Balancing
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作者 P.Rahul N.Kanthimathi +1 位作者 B.Kaarthick M.Leeban Moses 《Computer Systems Science & Engineering》 SCIE EI 2023年第2期1583-1600,共18页
Recently,the fundamental problem with Hybrid Mobile Ad-hoc Net-works(H-MANETs)is tofind a suitable and secure way of balancing the load through Internet gateways.Moreover,the selection of the gateway and overload of th... Recently,the fundamental problem with Hybrid Mobile Ad-hoc Net-works(H-MANETs)is tofind a suitable and secure way of balancing the load through Internet gateways.Moreover,the selection of the gateway and overload of the network results in packet loss and Delay(DL).For optimal performance,it is important to load balance between different gateways.As a result,a stable load balancing procedure is implemented,which selects gateways based on Fuzzy Logic(FL)and increases the efficiency of the network.In this case,since gate-ways are selected based on the number of nodes,the Energy Consumption(EC)was high.This paper presents a novel Node Quality-based Clustering Algo-rithm(NQCA)based on Fuzzy-Genetic for Cluster Head and Gateway Selection(FGCHGS).This algorithm combines NQCA with the Improved Weighted Clus-tering Algorithm(IWCA).The NQCA algorithm divides the network into clusters based upon node priority,transmission range,and neighbourfidelity.In addition,the simulation results tend to evaluate the performance effectiveness of the FFFCHGS algorithm in terms of EC,packet loss rate(PLR),etc. 展开更多
关键词 Ad-hoc load balancing H-MANET fuzzy logic system genetic algorithm node quality-based clustering algorithm improved weighted clustering fruitfly optimization
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RSSI-Based 3D Wireless Sensor Node Localization Using Hybrid T Cell Immune and Lotus Optimization
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作者 Weiwei Hu Kiran Sree Pokkuluri +3 位作者 Rajesh Arunachalam Bander A.Jabr Yasser A.Ali Preethi Palanisamy 《Computers, Materials & Continua》 SCIE EI 2024年第12期4833-4851,共19页
Wireless Sensor Network(WSNs)consists of a group of nodes that analyze the information from surrounding regions.The sensor nodes are responsible for accumulating and exchanging information.Generally,node local-ization... Wireless Sensor Network(WSNs)consists of a group of nodes that analyze the information from surrounding regions.The sensor nodes are responsible for accumulating and exchanging information.Generally,node local-ization is the process of identifying the target node’s location.In this research work,a Received Signal Strength Indicator(RSSI)-based optimal node localization approach is proposed to solve the complexities in the conventional node localization models.Initially,the RSSI value is identified using the Deep Neural Network(DNN).The RSSI is conceded as the range-based method and it does not require special hardware for the node localization process,also it consumes a very minimal amount of cost for localizing the nodes in 3D WSN.The position of the anchor nodes is fixed for detecting the location of the target.Further,the optimal position of the target node is identified using Hybrid T cell Immune with Lotus Effect Optimization algorithm(HTCI-LEO).During the node localization process,the average localization error is minimized,which is the objective of the optimal node localization.In the regular and irregular surfaces,this hybrid algorithm effectively performs the localization process.The suggested hybrid algorithm converges very fast in the three-dimensional(3D)environment.The accuracy of the proposed node localization process is 94.25%. 展开更多
关键词 Sensor node localization received signal strength indicator 3D wireless sensor network deep neural network average localization error and hybrid T cell immune with lotus effect optimization algorithm
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非均匀无线传感器网络移动节点分布下的多层分簇算法
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作者 何传波 张绿云 《传感技术学报》 北大核心 2026年第1期187-193,共7页
在非均匀无线传感器网络中,移动节点的分布可能不均匀,使得传感器节点之间的通信能耗较高。因此,为了有效地管理网络资源和优化性能,提出针对非均匀无线传感器网络移动节点分布下的多层分簇算法。为避免节点分布不均匀导致网络覆盖范围... 在非均匀无线传感器网络中,移动节点的分布可能不均匀,使得传感器节点之间的通信能耗较高。因此,为了有效地管理网络资源和优化性能,提出针对非均匀无线传感器网络移动节点分布下的多层分簇算法。为避免节点分布不均匀导致网络覆盖范围不均,在分析移动节点分簇能量消耗问题的基础上对节点进行初始化和分层处理。在分簇过程中,为了适应移动节点分布变化,使用二进制-粒子群优化算法使簇内能量消耗最小,通过更新粒子的速度与位置,实现无线传感器网络节点的多层分簇。仿真分析表明,所提方法在500 s后的无线传感器节点生存个数介于11到16个之间,并且在经过100次迭代后,剩余网络能量在1.2 J~2.1 J之间,且网络吞吐量在9×10^(5)bit/s~16×10^(5)bit/s之间。 展开更多
关键词 无线传感器 多层非均匀网络 粒子群优化算法 移动节点 分簇算法
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基于虚拟力鲸鱼算法的船舶无线传感器网络覆盖优化方法
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作者 尹震宇 李硕 +3 位作者 张飞青 徐光远 马雷乐 李东吉 《小型微型计算机系统》 北大核心 2026年第3期737-742,共6页
在船舶制造环境中,无线信号容易受金属墙壁屏蔽和多路径效应影响,导致船舱内的无线传感器网络覆盖率下降,影响节点对环境信息的有效感知.为优化传感器节点部署以最大化网络覆盖率,本论文针对船舶制造环境中的无线传感器网络信号覆盖问题... 在船舶制造环境中,无线信号容易受金属墙壁屏蔽和多路径效应影响,导致船舱内的无线传感器网络覆盖率下降,影响节点对环境信息的有效感知.为优化传感器节点部署以最大化网络覆盖率,本论文针对船舶制造环境中的无线传感器网络信号覆盖问题,提出一种基于虚拟力鲸鱼融合算法的优化方法.首先,建立了考虑金属墙壁障碍的物节点感知模型,以适应船舱环境的复杂性.其次,在鲸鱼群智能优化算法基础上,融合了虚拟力算法,并引入无限折叠迭代混沌映射(Iterative Map with Infinite Collapses,ICMIC)以提高种群多样性,增强算法的全局搜索能力和局部寻优能力,从而有效解决覆盖优化问题.仿真实验结果表明,本文所提算法在船舱复杂环境下能够显著提高最优覆盖率,且算法收敛速度优于对比算法.本文为解决复杂船舶环境中的无线传感器网络覆盖问题提供了一种创新性方法,为相关领域的研究和应用提供了参考. 展开更多
关键词 无线传感器网络 覆盖优化 混沌映射 节点部署
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基于对标管理和节点分析的煤层气集气系统站场工艺优化方法
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作者 孟凡华 张博 +3 位作者 刘松群 吴春升 屈丽彬 王子辉 《油气田地面工程》 2026年第1期60-65,共6页
在企业管理活动中,对标管理和节点分析是企业不断改进和获得竞争优势的最重要管理方式。山西煤层气分公司自2021年起,按照中国石油天然气股份有限公司煤层气田管理指标开展对标管理工作,发现了综合用能高的主要问题。为进一步提升煤层... 在企业管理活动中,对标管理和节点分析是企业不断改进和获得竞争优势的最重要管理方式。山西煤层气分公司自2021年起,按照中国石油天然气股份有限公司煤层气田管理指标开展对标管理工作,发现了综合用能高的主要问题。为进一步提升煤层气田地面系统运行管理水平,构建了一套具有二级节点、41项管控参数的煤层气集气系统井站管理体系,建立了节点分析和对标管理融合的工作流程,在此基础上,通过分析和论证,实施站场优化4处,实现沁水盆地煤层气田站场运行参数逐步提升。2021至2023年单位气田气生产综合能耗、单位气田气采集输综合能耗、单位气田气处理综合能耗逐年下降,完成了2021年的能耗指标低于平均值到2023年指标接近先进值的转变。 展开更多
关键词 煤层气 集气系统 对标管理 节点分析 工艺优化
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基于雨水管网节点的可靠度及敏感性分析
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作者 赵子成 《四川建材》 2026年第2期237-240,共4页
城市化进程的不断影响和极端天气的剧烈变化,使得对雨水管网的可靠度提出了更高的要求。根据结构可靠度理论,使用Monte-Carlo法确定雨水管网系统节点可靠度,继而采用敏感度理论仿真分析影响节点可靠度的8个关键参数,并提出了基于管网节... 城市化进程的不断影响和极端天气的剧烈变化,使得对雨水管网的可靠度提出了更高的要求。根据结构可靠度理论,使用Monte-Carlo法确定雨水管网系统节点可靠度,继而采用敏感度理论仿真分析影响节点可靠度的8个关键参数,并提出了基于管网节点可靠性及敏感性的优化措施。分析结果表明,管网节点可靠度较低,不能满足节点可靠度目标建议值;影响节点可靠度的参数可分为敏感性参数、较敏感性参数、不敏感性参数,并以此确定了节点可靠度公式;增大管网中管道管径、加大坡度和减小粗糙系数均可以有效提高管网节点可靠度,其中增大管径效果显著。 展开更多
关键词 雨水管网 节点 可靠度 MONTE-CARLO法 敏感性 优化
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基于遗传算法与粒子群算法融合的路径规划
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作者 焦文博 章翔峰 +2 位作者 姜宏 韩文旭 高博 《电子测量技术》 北大核心 2026年第2期117-127,共11页
针对移动机器人在复杂障碍物环境的路径规划过程中存在的搜索效率低、易陷入局部最优、路径冗余节点过多等问题,本文提出了一种基于遗传算法与粒子群优化算法融合的路径规划方法。首先,利用改进的遗传算法生成具有高质量的初始路径种群... 针对移动机器人在复杂障碍物环境的路径规划过程中存在的搜索效率低、易陷入局部最优、路径冗余节点过多等问题,本文提出了一种基于遗传算法与粒子群优化算法融合的路径规划方法。首先,利用改进的遗传算法生成具有高质量的初始路径种群,为后续粒子群优化算法提供先验搜索导向,增加种群的多样性并加快算法收敛;其次,提出基于适应度变化和迭代进度的双重策略来动态调整交叉概率,同时提出非线性动态递减惯性权重调整方法,从而有效平衡算法的全局搜索和局部搜索;接着,提出基于向量叉积的几何冗余节点判别准则和障碍物安全距离阈值判别方法,有效删除路径中的冗余节点和过渡节点,从而缩短路径长度并提高路径的优化能力;最后,在5个基准测试函数和2个不同的栅格地图环境中进行仿真实验以验证算法的优化性能。实验结果表明,本文所提算法相比遗传算法、粒子群优化算法、差分进化算法、灰狼优化算法、麻雀搜索算法、蜣螂优化算法及冠豪猪优化算法,在20×20的栅格地图中,路径长度平均降低了3.74%,运行时间平均降低了23.13%;而在30×30的栅格地图中,路径长度平均降低了4.83%,运行时间平均降低了19.95%。此外,本文算法规划的路径节点数也相对较少,表明本文所提算法在路径规划方面不仅能够有效缩短路径长度、降低运行时间,还能有效简化路径,展现出良好的寻优能力。 展开更多
关键词 路径规划 遗传算法 粒子群算法 交叉概率 惯性权重 节点
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水工门式起重机作业场景分布式感知网络优化设计方法
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作者 董元发 林杰 +3 位作者 彭巍 安友军 王浩洋 周彬 《计算机集成制造系统》 北大核心 2026年第2期556-566,共11页
高可靠、低延时的分布式感知网络是实现野外强遮挡环境下水工门式起重机智能化运行的基础。面向水工门式起重机作业场景远距离、高可靠数据传输需求,构建了中继网络中断概率模型,以中继网络中断概率最小和中继节点数量最少为优化目标,... 高可靠、低延时的分布式感知网络是实现野外强遮挡环境下水工门式起重机智能化运行的基础。面向水工门式起重机作业场景远距离、高可靠数据传输需求,构建了中继网络中断概率模型,以中继网络中断概率最小和中继节点数量最少为优化目标,建立了分布式感知网络中继节点优化部署模型,通过改进传统NSGA-II算法求解了该多目标数学优化模型,并结合实际场景进行了有效性验证。实验结果表明:(1)三种改进操作在改进NSGA-II算法中发挥着积极且重要的作用,且它们对算法整体性能的贡献度不低于4.99%;(2)改进的NSGA-II算法显著优于其他三种经典优化算法,中断概率分别平均降低0.0223,0.0590和0.0819,所提分布式感知网络优化设计方法可为水电装备的智能化场景建设提供有效支撑。 展开更多
关键词 水工门式起重机 中断概率 中继节点 多目标优化 熵权TOPSIS
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基于Kriging模型的瞬变工况下深沟球轴承结构优化设计
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作者 张泽琳 龙浩然 +2 位作者 王蕾 曹建华 夏绪辉 《机电工程》 北大核心 2026年第1期45-55,共11页
在瞬变工况下(如急加速),深沟球轴承会因惯性载荷增大和应力分布不均匀导致应力升高。针对这一问题,以深沟球轴承6208为研究对象,提出了一种融合瞬态动力学仿真、最佳填充空间试验设计(OPSD)、Kriging模型与多目标遗传算法(MOGA)的结构... 在瞬变工况下(如急加速),深沟球轴承会因惯性载荷增大和应力分布不均匀导致应力升高。针对这一问题,以深沟球轴承6208为研究对象,提出了一种融合瞬态动力学仿真、最佳填充空间试验设计(OPSD)、Kriging模型与多目标遗传算法(MOGA)的结构优化设计方法。首先,基于瞬态动力学分析建立了深沟球轴承多体动力学模型,通过节点动态等效应力分析揭示了钢球与内外圈接触区域的应力周期性波动规律,并设置了三种瞬变梯度工况,研究了加速度幅值对应力分布的影响,发现了最大应力随加速度增大而显著升高;然后,综合考虑了深沟球轴承在瞬变工况下各结构参数对应力的影响,选取了内、外圈沟道曲率半径系数和钢球直径作为设计变量,以深沟球轴承在瞬变工况下的最大等效应力和最大接触应力作为目标函数,结合最佳填充空间设计方法(OPSD),建立了设计变量与目标函数之间的Kriging响应面模型;最后,使用多目标遗传算法(MOGA)对深沟球轴承的设计参数进行了优化求解,得到了最优的设计参数组合,并对优化结果的可靠性进行了实验验证。研究结果表明:优化后的深沟球轴承最大等效应力从408.52 MPa降低至382.74 MPa,减少了6.31%;最大接触应力从451.61 MPa降低至415.05 MPa,减少了8.10%。该研究结果可为深沟球轴承的结构优化设计提供一种思路。 展开更多
关键词 滚动轴承 试验设计方法 KRIGING模型 瞬态动力学 最佳填充空间试验设计 多目标遗传算法 节点动态等效应力分析 多目标优化
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数实产业融合与区域创新生态系统韧性——基于“点-线-面”产业网络结构视角
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作者 申晨荣 高波 《华东经济管理》 北大核心 2026年第1期42-49,共8页
文章研究数实产业融合对区域创新生态系统韧性的影响效应和作用路径。研究发现,数实产业融合通过重塑产业网络的“点-线-面”结构影响区域创新生态系统韧性。在点结构维度,数实产业融合夯实创新生态系统的微观韧性基础;在线结构维度,数... 文章研究数实产业融合对区域创新生态系统韧性的影响效应和作用路径。研究发现,数实产业融合通过重塑产业网络的“点-线-面”结构影响区域创新生态系统韧性。在点结构维度,数实产业融合夯实创新生态系统的微观韧性基础;在线结构维度,数实产业融合与创新生态系统韧性间存在“效率-韧性”悖论;在面结构维度,数实产业融合通过局部紧耦合和全局弱连接增强创新生态系统韧性。异质性分析表明,数实产业融合对创新生态响应能力的强化效应显著,数字产品制造业、数字技术应用业更能够提升系统韧性,且在应对贸易政策不确定性冲击时表现出更强的调节能力。研究结论为构建自主可控的现代化产业体系和优化区域创新网络架构提供参考。 展开更多
关键词 数实产业融合 节点能力升级 链路效率优化 产业网络重塑 创新生态系统韧性
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基于多目标优化的新型配电网储能选址与容量配置策略研究
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作者 程逸飞 魏业文 +3 位作者 黄冰 蒋旭辉 严梓宁 郭亮 《现代电子技术》 北大核心 2026年第4期111-118,共8页
针对新型配电网因广域分布式电源接入产生的电压越限的问题,在兼顾新能源消纳能力提升与经济性优化目标下,提出了一种综合考虑多方面因素的储能选址与容量配置策略。首先,建立新型配电网模型,引入节点电压稳定性及动态热定值作为指标,... 针对新型配电网因广域分布式电源接入产生的电压越限的问题,在兼顾新能源消纳能力提升与经济性优化目标下,提出了一种综合考虑多方面因素的储能选址与容量配置策略。首先,建立新型配电网模型,引入节点电压稳定性及动态热定值作为指标,对线路进行稳定性评估;其次,构建相应的经济性模型,并采用改进的多目标粒子群优化算法进行求解;最后,通过IEEE33节点模型验证了该策略研究的效果。实验结果表明:稳定性指标中引入的动态热定值相较于传统静态热定值可以更准确地识别配电网中易过载的线路;并且通过改进粒子群优化算法可以使储能系统的安装成本降低47.37%。所以该策略不仅可以更好地平抑配电网的电压波动问题,提高配电网的稳定性,而且可以有效地降低配电网的运营成本。 展开更多
关键词 储能系统 选址定容 节点电压稳定性 动态热定值 配电网稳定性 改进多目标粒子群算法 分布式发电
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