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Evolving adaptive and interpretable decision trees for cooperative submarine search
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作者 Yang Gao Yue Wang +3 位作者 Lingyun Tian Xiaotong Hong Chao Xue Dongguang Li 《Defence Technology(防务技术)》 2025年第6期83-94,共12页
System upgrades in unmanned systems have made Unmanned Aerial Vehicle(UAV)-based patrolling and monitoring a preferred solution for ocean surveillance.However,dynamic environments and large-scale deployments pose sign... System upgrades in unmanned systems have made Unmanned Aerial Vehicle(UAV)-based patrolling and monitoring a preferred solution for ocean surveillance.However,dynamic environments and large-scale deployments pose significant challenges for efficient decision-making,necessitating a modular multiagent control system.Deep Reinforcement Learning(DRL)and Decision Tree(DT)have been utilized for these complex decision-making tasks,but each has its limitations:DRL is highly adaptive but lacks interpretability,while DT is inherently interpretable but has limited adaptability.To overcome these challenges,we propose the Adaptive Interpretable Decision Tree(AIDT),an evolutionary-based algorithm that is both adaptable to diverse environmental settings and highly interpretable in its decision-making processes.We first construct a Markov decision process(MDP)-based simulation environment using the Cooperative Submarine Search task as a representative scenario for training and testing the proposed method.Specifically,we use the heat map as a state variable to address the issue of multi-agent input state proliferation.Next,we introduce the curiosity-guiding intrinsic reward to encourage comprehensive exploration and enhance algorithm performance.Additionally,we incorporate decision tree size as an influence factor in the adaptation process to balance task completion with computational efficiency.To further improve the generalization capability of the decision tree,we apply a normalization method to ensure consistent processing of input states.Finally,we validate the proposed algorithm in different environmental settings,and the results demonstrate both its adaptability and interpretability. 展开更多
关键词 Cooperative decision making Interpretable decision trees Cooperative submarine search Maritime unmanned systems
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WFRFT modulation recognition based on HOC and optimal order searching algorithm 被引量:6
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作者 LIANG Yuan DA Xinyu +3 位作者 WU Jialiang XU Ruiyang ZHANG Zhe LIU Hujun 《Journal of Systems Engineering and Electronics》 SCIE EI CSCD 2018年第3期462-470,共9页
A hybrid carrier(HC) scheme based on weighted-type fractional Fourier transform(WFRFT) has been proposed recently.While most of the works focus on HC scheme's inherent characteristics, little attention is paid to... A hybrid carrier(HC) scheme based on weighted-type fractional Fourier transform(WFRFT) has been proposed recently.While most of the works focus on HC scheme's inherent characteristics, little attention is paid to the WFRFT modulation recognition.In this paper, a new theory is provided to recognize the WFRFT modulation based on higher order cumulants(HOC). First, it is deduced that the optimal WFRFT received order can be obtained through the minimization of 4 th-order cumulants, C_(42). Then, a combinatorial searching algorithm is designed to minimize C_(42).Finally, simulation results show that the designed scheme has a high recognition rate and the combinatorial searching algorithm is effective and reliable. 展开更多
关键词 weighted-type fractional Fourier transform(WFRFT) modulation recognition higher order cumulants(HOC) combinatorial searching algorithm
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Grover quantum searching algorithm based on weighted targets 被引量:1
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作者 Li Panchi Li Shiyong 《Journal of Systems Engineering and Electronics》 SCIE EI CSCD 2008年第2期363-369,共7页
The current Grover quantum searching algorithm cannot identify the difference in importance of the search targets when it is applied to an unsorted quantum database, and the probability for each search target is equal... The current Grover quantum searching algorithm cannot identify the difference in importance of the search targets when it is applied to an unsorted quantum database, and the probability for each search target is equal. To solve this problem, a Grover searching algorithm based on weighted targets is proposed. First, each target is endowed a weight coefficient according to its importance. Applying these different weight coefficients, the targets are represented as quantum superposition states. Second, the novel Grover searching algorithm based on the quantum superposition of the weighted targets is constructed. Using this algorithm, the probability of getting each target can be approximated to the corresponding weight coefficient, which shows the flexibility of this algorithm. Finally, the validity of the algorithm is proved by a simple searching example. 展开更多
关键词 Grover algorithm targets weighting quantum searching quantum computing.
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Fuzzy neural and chaotic searching hybrid algorithm and its application in electric customers’s credit risk evaluation 被引量:2
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作者 李翔 刘广迎 乞建勋 《Journal of Central South University of Technology》 EI 2007年第1期140-143,共4页
To evaluate the credit risk of customers in power market precisely, the new chaotic searching and fuzzy neural network (FNN) hybrid algorithm were proposed. By combining with the chaotic searching, the learning abilit... To evaluate the credit risk of customers in power market precisely, the new chaotic searching and fuzzy neural network (FNN) hybrid algorithm were proposed. By combining with the chaotic searching, the learning ability of the FNN was markedly enhanced. Customers’ actual credit flaw data of power supply enterprises were collected to carry on the real evaluation, which can be treated as example for the model. The result shows that the proposed method surpasses the traditional statistical models in regard to the precision of forecasting and has a practical value. Compared with the results of ordinary FNN and ANN, the precision of the proposed algorithm can be enhanced by 2.2% and 4.5%, respectively. 展开更多
关键词 power supply enterprise credit-risk fuzzy neural network chaotic searching
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A method of searching fault propagation paths in mechatronic systems based on MPPS model 被引量:2
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作者 WANG Yan-hui LI Man SHI Hao 《Journal of Central South University》 SCIE EI CAS CSCD 2018年第9期2199-2218,共20页
In view of the structure and action behavior of mechatronic systems,a method of searching fault propagation paths called maximum-probability path search(MPPS)is proposed,aiming to determine all possible failure propag... In view of the structure and action behavior of mechatronic systems,a method of searching fault propagation paths called maximum-probability path search(MPPS)is proposed,aiming to determine all possible failure propagation paths with their lengths if faults occur.First,the physical structure system,function behavior,and complex network theory are integrated to define a system structural-action network(SSAN).Second,based on the concept of SSAN,two properties of nodes and edges,i.e.,the topological property and reliability property,are combined to define the failure propagation property.Third,the proposed MPPS model provides all fault propagation paths and possible failure rates of nodes on these paths.Finally,numerical experiments have been implemented to show the accuracy and advancement compared with the methods of Function Space Iteration(FSI)and the algorithm of Ant Colony Optimization(ACO). 展开更多
关键词 mechatronic systems complex networks fault propagation path maximum-probability path search(MPPS)
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Cooperative UAV search strategy based on DMPC-AACO algorithm in restricted communication scenarios 被引量:1
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作者 Shiyuan Chai Zhen Yang +3 位作者 Jichuan Huang Xiaoyang Li Yiyang Zhao Deyun Zhou 《Defence Technology(防务技术)》 SCIE EI CAS CSCD 2024年第1期295-311,共17页
Improvement of integrated battlefield situational awareness in complex environments involving dynamic factors such as restricted communications and electromagnetic interference(EMI)has become a contentious research pr... Improvement of integrated battlefield situational awareness in complex environments involving dynamic factors such as restricted communications and electromagnetic interference(EMI)has become a contentious research problem.In certain mission environments,due to the impact of many interference sources on real-time communication or mission requirements such as the need to implement communication regulations,the mission stages are represented as a dynamic combination of several communication-available and communication-unavailable stages.Furthermore,the data interaction between unmanned aerial vehicles(UAVs)can only be performed in specific communication-available stages.Traditional cooperative search algorithms cannot handle such situations well.To solve this problem,this study constructed a distributed model predictive control(DMPC)architecture for a collaborative control of UAVs and used the Voronoi diagram generation method to re-plan the search areas of all UAVs in real time to avoid repetition of search areas and UAV collisions while improving the search efficiency and safety factor.An attention mechanism ant-colony optimization(AACO)algorithm is proposed for UAV search-control decision planning.The search strategy is adaptively updated by introducing an attention mechanism for regular instruction information,a priori information,and emergent information of the mission to satisfy different search expectations to the maximum extent.Simulation results show that the proposed algorithm achieves better search performance than traditional algorithms in restricted communication constraint scenarios. 展开更多
关键词 Unmanned aerial vehicles(UAV) Cooperative search Restricted communication Mission planning DMPC-AACO
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Cluster based hierarchical resource searching model in P2P network 被引量:1
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作者 Yang Ruijuan Liu Jian Tian Jingwen 《Journal of Systems Engineering and Electronics》 SCIE EI CSCD 2007年第1期188-194,共7页
For the problem of large network load generated by the Gnutella resource-searching model in Peer to Peer (P2P) network, a improved model to decrease the network expense is proposed, which establishes a duster in P2P... For the problem of large network load generated by the Gnutella resource-searching model in Peer to Peer (P2P) network, a improved model to decrease the network expense is proposed, which establishes a duster in P2P network, auto-organizes logical layers, and applies a hybrid mechanism of directional searching and flooding. The performance analysis and simulation results show that the proposed hierarchical searching model has availably reduced the generated message load and that its searching-response time performance is as fairly good as that of the Gnutella model. 展开更多
关键词 Communication and information system Resource-searching model in P2P network GNUTELLA CLUSTER Hierarchical network
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Optimal search path planning of UUV in battlefeld ambush scene
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作者 Wei Feng Yan Ma +3 位作者 Heng Li Haixiao Liu Xiangyao Meng Mo Zhou 《Defence Technology(防务技术)》 SCIE EI CAS CSCD 2024年第2期541-552,共12页
Aiming at the practical application of Unmanned Underwater Vehicle(UUV)in underwater combat,this paper proposes a battlefield ambush scene with UUV considering ocean current.Firstly,by establishing these mathematical ... Aiming at the practical application of Unmanned Underwater Vehicle(UUV)in underwater combat,this paper proposes a battlefield ambush scene with UUV considering ocean current.Firstly,by establishing these mathematical models of ocean current environment,target movement,and sonar detection,the probability calculation methods of single UUV searching target and multiple UUV cooperatively searching target are given respectively.Then,based on the Hybrid Quantum-behaved Particle Swarm Optimization(HQPSO)algorithm,the path with the highest target search probability is found.Finally,through simulation calculations,the influence of different UUV parameters and target parameters on the target search probability is analyzed,and the minimum number of UUVs that need to be deployed to complete the ambush task is demonstrated,and the optimal search path scheme is obtained.The method proposed in this paper provides a theoretical basis for the practical application of UUV in the future combat. 展开更多
关键词 Battlefield ambush Optimal search path planning UUV path Planning Probability of cooperative search
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Improving path planning efficiency for underwater gravity-aided navigation based on a new depth sorting fast search algorithm
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作者 Xiaocong Zhou Wei Zheng +2 位作者 Zhaowei Li Panlong Wu Yongjin Sun 《Defence Technology(防务技术)》 SCIE EI CAS CSCD 2024年第2期285-296,共12页
This study focuses on the improvement of path planning efficiency for underwater gravity-aided navigation.Firstly,a Depth Sorting Fast Search(DSFS)algorithm was proposed to improve the planning speed of the Quick Rapi... This study focuses on the improvement of path planning efficiency for underwater gravity-aided navigation.Firstly,a Depth Sorting Fast Search(DSFS)algorithm was proposed to improve the planning speed of the Quick Rapidly-exploring Random Trees*(Q-RRT*)algorithm.A cost inequality relationship between an ancestor and its descendants was derived,and the ancestors were filtered accordingly.Secondly,the underwater gravity-aided navigation path planning system was designed based on the DSFS algorithm,taking into account the fitness,safety,and asymptotic optimality of the routes,according to the gravity suitability distribution of the navigation space.Finally,experimental comparisons of the computing performance of the ChooseParent procedure,the Rewire procedure,and the combination of the two procedures for Q-RRT*and DSFS were conducted under the same planning environment and parameter conditions,respectively.The results showed that the computational efficiency of the DSFS algorithm was improved by about 1.2 times compared with the Q-RRT*algorithm while ensuring correct computational results. 展开更多
关键词 Depth Sorting Fast search algorithm Underwater gravity-aided navigation Path planning efficiency Quick Rapidly-exploring Random Trees*(QRRT*)
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建筑火灾全局动态疏散路径规划研究 被引量:1
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作者 李明海 兰亚乐 +2 位作者 马骁 何鑫 杨一帆 《安全与环境学报》 北大核心 2025年第1期205-215,共11页
传统A^(*)算法被广泛应用于路径规划研究中,但该算法在处理复杂环境时存在搜索效率低和寻优路径质量不高的问题。为克服这些问题,提出了一种改进A^(*)算法,该算法结合了启发式搜索与实时动态规划的思想,能在保留A^(*)算法优势的同时显... 传统A^(*)算法被广泛应用于路径规划研究中,但该算法在处理复杂环境时存在搜索效率低和寻优路径质量不高的问题。为克服这些问题,提出了一种改进A^(*)算法,该算法结合了启发式搜索与实时动态规划的思想,能在保留A^(*)算法优势的同时显著提升其搜索效率和路径质量。在改进算法中,设计了一种新型启发式函数,该函数不仅考虑了火灾场景下的危险因素,还引入了实时动态规划策略以引导搜索过程,从而生成更高效的疏散路径。将改进算法与原始算法进行性能对比测试以及建筑火灾模拟疏散仿真对比试验,以验证改进算法的寻优性能。对比测试和试验结果表明,改进A^(*)算法在提高路径规划效率方面具有显著优势。与传统A^(*)算法相比,改进A^(*)算法生成的应急疏散路径中拐点数量少,扩展节点的数量减少96.49%,路径计算速度提升95.68%。验证了改进A^(*)算法在复杂场景下的优越性能,表明改进A^(*)算法在实际应用中具有广阔的前景。 展开更多
关键词 安全工程 A^(*)算法 启发式搜索 动态规划 火灾场景
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基于折射反向学习机制的樽海鞘群算法 被引量:1
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作者 钱谦 翟豪 +2 位作者 潘家文 冯勇 李英娜 《小型微型计算机系统》 北大核心 2025年第1期119-127,共9页
由于樽海鞘群算法(SSA)容易陷入局部最优,导致算法收敛能力较差,为了提高算法的搜索性能,本文提出了一种基于折射反向学习的樽海鞘群算法rOSSA.算法根据折射反向学习在解空间中获得反向解,使搜索代理获得更多选择机会,增加算法找到更优... 由于樽海鞘群算法(SSA)容易陷入局部最优,导致算法收敛能力较差,为了提高算法的搜索性能,本文提出了一种基于折射反向学习的樽海鞘群算法rOSSA.算法根据折射反向学习在解空间中获得反向解,使搜索代理获得更多选择机会,增加算法找到更优解的可能性.此外,在折射反向学习中引入概率扰动机制,通过概率扰动机制使搜索代理在迭代后期能够跳出局部最优,从而增强算法的全局搜索能力.最后,通过9个单峰、多峰、复合测试函数和一个工程计算问题将rOSSA与近年提出的一些主流算法进行比较,实验结果有效证明了本文改进算法的有效性. 展开更多
关键词 樽海鞘群算法 搜索性能 折射反向学习 概率扰动
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面向蜂窝栅格地图的改进跳点搜索算法研究 被引量:1
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作者 赵晓东 侯坤 +1 位作者 王建超 宿景芳 《计算机工程与应用》 北大核心 2025年第8期100-107,共8页
针对跳点搜索算法(jump point search,JPS)在路径规划过程中出现的穿越墙角的不安全行为,提出了一种基于蜂窝栅格地图的跳点搜索算法(honeycomb raster map-JPS,H-JPS)。构建蜂窝栅格地图代替传统栅格地图,在JPS算法的基础上结合蜂窝栅... 针对跳点搜索算法(jump point search,JPS)在路径规划过程中出现的穿越墙角的不安全行为,提出了一种基于蜂窝栅格地图的跳点搜索算法(honeycomb raster map-JPS,H-JPS)。构建蜂窝栅格地图代替传统栅格地图,在JPS算法的基础上结合蜂窝栅格修改了剪枝规则与跳点判断规则,再利用蜂窝栅格特点设计了新的启发式函数来提高搜索效率,通过找寻最远节点的节点更新规则来优化生成的轨迹。利用Matlab仿真平台验证算法的搜索效率和安全性,结果表明,相较于传统JPS算法,采用H-JPS算法进行路径规划能够完全消除危险节点,路径规划时间和长度分别缩短了41.9%和11.1%,显著提高了搜索效率。 展开更多
关键词 蜂窝栅格 跳点搜索 启发式函数 路径规划
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快速综合学习粒子群优化算法 被引量:3
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作者 杨帆 乌景秀 +2 位作者 范子武 李子祥 朱沈涛 《水利水电技术(中英文)》 北大核心 2025年第2期30-44,共15页
【目的】粒子群优化算法在反问题求解、函数优化、数据挖掘、机器学习等研究领域广泛应用,但在求解复杂多峰问题时仍存在过早收敛的问题。为了提升粒子群算法在处理复杂多峰问题求解速度和精度,提出了快速综合学习粒子群优化算法(Fast C... 【目的】粒子群优化算法在反问题求解、函数优化、数据挖掘、机器学习等研究领域广泛应用,但在求解复杂多峰问题时仍存在过早收敛的问题。为了提升粒子群算法在处理复杂多峰问题求解速度和精度,提出了快速综合学习粒子群优化算法(Fast Comprehensive Learning Particle Swarm Optimization,FCLPSO)。【方法】FCLPSO算法引入粒子学习概率、个体影响概率、群体影响概率三个属性,表征每个粒子个体“与生俱来”的不同学习能力,同时新增强化学习、粒子重生等策略,提升算法收敛速度以及监测并跳出“伪收敛”状态。选用14个标准测试函数以及6种常用粒子群变体算法开展FCLPSO算法性能分析。【结果】结果显示:在收敛性方面,FCLPSO算法平均排名为1.86,排名第一次数为7次、排名第二的次数为2次、排名最后次数为0,最终综合排名第一;在鲁棒性方面,FCLPSO算法成功率排名第一,平均值为94.3%,14个测试函数中最低成功率为73.3%;达到阈值所需适应度评价次数最少,平均值40817,较其他算法评价次数少一半。【结论】结果表明:FCLPSO算法在收敛精度、收敛速度和鲁棒性方面排名综合第一,对复杂多峰问题求解更具优势,可为工程应用中复杂优化问题求解提供重要手段。 展开更多
关键词 粒子群优化算法 强化学习 粒子属性 粒子重生 过早收敛 影响因素 人工智能 全局搜索
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基于门控注意网络模型的天然气管道泄漏检测新方法 被引量:2
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作者 董宏丽 孙桐 +2 位作者 王闯 杨帆 商柔 《天然气工业》 北大核心 2025年第1期25-36,共12页
准确的泄漏检测对维护天然气管道运行安全至关重要。近年来,深度学习已成为天然气管道泄漏检测的常用方法,但由于天然气管道数据具有复杂的时间动态特性,进而导致大多数深度学习方法在识别泄漏类型方面难以取得优异的性能。此外,检测模... 准确的泄漏检测对维护天然气管道运行安全至关重要。近年来,深度学习已成为天然气管道泄漏检测的常用方法,但由于天然气管道数据具有复杂的时间动态特性,进而导致大多数深度学习方法在识别泄漏类型方面难以取得优异的性能。此外,检测模型的初始超参数选择通常是随机的,这也可能会导致识别性能不稳定。为了提升天然气管道泄漏检测的准确性,提出一种基于麻雀搜索算法的门控注意网络模型(Sparrow Search Algorithm-based Gate Attention Network, SGAN)。首先,为了提取有效且具有鲁棒性的数据特征,采用带交叉熵函数的麻雀搜索算法对门控循环单元的初始超参数进行全局搜索;然后,设计了一种异常注意力机制,通过对数据特征进行加权来放大正常和泄漏数据之间的区分差异;最后,将所提算法应用于天然气管道的泄漏检测。研究结果表明:(1) SGAN模型能够实现模型超参数的自适应优化,并加快了模型的收敛速度,使模型性能更加稳定;(2) SGAN模型通过对正常与泄漏特征进行加权处理,显著提升了数据特征的区分效果;(3) SGAN模型的学习表示能力和泛化能力得到了明显加强,以此提高了对数据的分类性能;(4) SGAN模型能够显著提高天然气管道泄漏检测的准确率和召回率,可减少误报率和漏报率,并且其性能明显优于常规分类算法。结论认为,SGAN模型通过自适应优化和异常注意力机制结合,能精准识别泄漏特征,并快速响应天然气管道中的泄漏情况,有效提升了检测的准确性和可靠性,显著降低了安全事故风险,为天然气管道泄漏检测提供了一种高效、智能的解决新方案。 展开更多
关键词 天然气管道 泄漏检测 麻雀搜索算法 门控循环单元 异常注意力机制 自适应优化 智能
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研究生教育促进新质生产力的机制研究 被引量:1
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作者 周均旭 王涛 《黑龙江高教研究》 北大核心 2025年第1期91-97,共7页
基于2011-2020年我国30个省份的面板数据,运用双向固定效应模型、中介效应模型和门槛效应模型探究了研究生教育对新质生产力的影响效应。结果表明:在全国层面,研究生教育能够有效促进新质生产力发展,经过一系列稳健性检验结论依然成立;... 基于2011-2020年我国30个省份的面板数据,运用双向固定效应模型、中介效应模型和门槛效应模型探究了研究生教育对新质生产力的影响效应。结果表明:在全国层面,研究生教育能够有效促进新质生产力发展,经过一系列稳健性检验结论依然成立;科技创新在研究生教育促进新质生产力发展的影响过程中发挥部分中介作用;研究生教育在促进新质生产力发展过程中存在产学研合作的门槛效应;区域异质性分析表明,研究生教育显著促进东部地区新质生产力发展,中西部地区次之,东北地区则不显著。对此,应聚焦研究生教育高质量发展,重视科技创新机制转化作用,充分发挥产学研合作调节效应,优化研究生教育布局结构,促进区域新质生产力形成与协调发展。 展开更多
关键词 新质生产力 研究生教育 科技创新 产学研合作
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Global Optimization for Combination Test Suite by Cluster Searching Algorithm
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作者 Hao Chen Xiaoying Pan Jiaze Sun 《自动化学报》 EI CSCD 北大核心 2017年第9期1625-1635,共11页
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基于YOLOv5s的精密视觉检测系统快速调焦方法 被引量:1
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作者 胡新宇 刘锡阳 +3 位作者 张骏巍 严爽 李云翔 叶旭辉 《中国机械工程》 北大核心 2025年第4期864-872,共9页
针对视觉检测系统在测量时因受生产精度、装配误差等外界因素影响,图像存在离焦模糊的问题,提出了一种基于YOLOv5s的精密视觉检测系统快速调焦方法,该方法采用粗精结合调焦策略。首先利用训练的YOLOv5s模型搜索清晰成像的景深区间,准确... 针对视觉检测系统在测量时因受生产精度、装配误差等外界因素影响,图像存在离焦模糊的问题,提出了一种基于YOLOv5s的精密视觉检测系统快速调焦方法,该方法采用粗精结合调焦策略。首先利用训练的YOLOv5s模型搜索清晰成像的景深区间,准确率达到97.6%,900 ms内完成粗调焦过程;然后利用清晰度评价函数及改进搜索算法实现精调焦,在景深区间内快速准确地找到最佳成像平面。实验结果表明,在±4 mm的离焦区间内,调焦精度达到0.04 mm,平均用时不超过1600 ms,较现有基于图像处理的方法缩短了47.6%,具有速度快、精度高、适应性强等优点,可应用于视觉检测系统的在线精密测量。 展开更多
关键词 自动调焦 视觉检测 区间搜索 清晰度评价函数
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基于邻域搜索策略的蜣螂优化算法及应用 被引量:1
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作者 杜晓昕 牛丽明 +3 位作者 王波 王一萍 李长荣 王振飞 《广西师范大学学报(自然科学版)》 北大核心 2025年第2期149-167,共19页
针对蜣螂优化算法存在收敛速度慢,容易陷入局部最优,且全局探索能力较弱等问题,受领导者-追随者策略(leader-follower)的启发,本文提出一种基于邻域搜索策略的蜣螂优化算法。首先,引入Singer映射初始化种群,提高初始解的质量,提高算法... 针对蜣螂优化算法存在收敛速度慢,容易陷入局部最优,且全局探索能力较弱等问题,受领导者-追随者策略(leader-follower)的启发,本文提出一种基于邻域搜索策略的蜣螂优化算法。首先,引入Singer映射初始化种群,提高初始解的质量,提高算法的收敛速度;其次,提出一种邻域搜索策略来增强种群多样性,跳出局部收敛,提高算法的局部开发能力;最后,设计一种精英池-扰动策略来扩大搜索范围,增强算法的全局勘探和局部寻优能力,提高算法的求解效率及求解精度。为了验证所提算法的有效性,本文设计一系列实验来验证所提算法的性能,结果表明,该算法在寻优精度和收敛速度方面有较大提升。将该算法应用于无人机三维路径规划问题,实验结果表明,该算法在处理实际应用问题时表现出了有效性和高效性。 展开更多
关键词 蜣螂优化算法 路径规划 Singer映射 邻域搜索策略 精英池-扰动策略
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贯通运营下市域铁路与地铁列车开行方案协同优化 被引量:1
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作者 彭其渊 刘思源 +3 位作者 江山 冯涛 陈垚 张永祥 《交通运输系统工程与信息》 北大核心 2025年第2期36-47,共12页
区域多制式轨道交通贯通运营下列车开行方案的协同优化对于提升线网的整体运输效率具有重要意义。本文建立贯通运营下市域铁路与地铁列车开行方案编制和客流分配一体化优化模型,以最小化乘客出行费用与企业运营费用之和为目标,考虑通过... 区域多制式轨道交通贯通运营下列车开行方案的协同优化对于提升线网的整体运输效率具有重要意义。本文建立贯通运营下市域铁路与地铁列车开行方案编制和客流分配一体化优化模型,以最小化乘客出行费用与企业运营费用之和为目标,考虑通过能力和列车载客能力、车底资源以及列车服务数量等实际约束,同时设计改进的自适应大规模邻域搜索算法进行求解,确定全线的列车开行交路,以及各交路上的列车开行频率、编组类型和停站方案,并验证算法在不同客流需求水平案例下的有效性。研究结果表明:相较于两阶段法,改进的自适应大规模邻域搜索算法能以平均234 s的计算时间得到满意解,目标函数值平均下降3.6%;与独立运营相比,贯通运营后,企业运营费用平均降低了11.3%,全线乘客和跨线乘客出行费用分别平均降低了3.9%和10.7%,跨线乘客换乘次数平均减少了18.7%,车底使用数量平均减少了14.4%;与站站停模式相比,市域铁路本线和贯通列车采用灵活停站的运营模式后,全线乘客出行费用平均降低了4.2%。本文提出的方法能够为市域铁路与地铁贯通运营开行方案编制提供辅助决策支持。 展开更多
关键词 城市交通 贯通运营 改进自适应大规模邻域搜索 列车开行方案 市域铁路 地铁
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小样本下基于改进麻雀算法优化卷积神经网络的飞轮储能系统损耗 被引量:2
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作者 魏乐 李承霖 +1 位作者 房方 刘渝斌 《电网技术》 北大核心 2025年第1期366-372,I0113-I0115,共10页
飞轮储能系统具有待机损耗,不适合长期储能。针对飞轮损耗这一经济指标,基于飞轮储能系统运行的小样本数据,提出了一种结合Logistic混沌麻雀优化算法和卷积神经网络的飞轮损耗计算模型。首先,分析了飞轮损耗产生的原因;接下来对宁夏灵... 飞轮储能系统具有待机损耗,不适合长期储能。针对飞轮损耗这一经济指标,基于飞轮储能系统运行的小样本数据,提出了一种结合Logistic混沌麻雀优化算法和卷积神经网络的飞轮损耗计算模型。首先,分析了飞轮损耗产生的原因;接下来对宁夏灵武电厂的飞轮运行数据进行预处理,并使用对抗生成网络进行小样本扩充;然后基于卷积神经网络建立损耗模型,使用改进的麻雀算法对模型超参数进行优化,并通过对比验证了该模型的优越性;最后通过仿真实验证明了该模型能够优化飞轮储能系统的出力,降低飞轮损耗。 展开更多
关键词 飞轮储能系统损耗 小样本学习 卷积神经网络 麻雀搜索算法 LOGISTIC混沌映射
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