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基于Max-plus方法的列车运行图稳定性评价 被引量:9
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作者 杨意坚 何宇强 《铁道学报》 EI CAS CSCD 北大核心 2009年第4期14-19,共6页
列车运行图是铁路运输组织重要的技术文件,因而列车运行图质量的评估历来受到铁路部门的重视。而列车运行图稳定性是评估工作中的重要内容之一,它是指列车运行图在实施过程中出现列车晚点的概率和消除晚点以及晚点传播的能力。本文介绍m... 列车运行图是铁路运输组织重要的技术文件,因而列车运行图质量的评估历来受到铁路部门的重视。而列车运行图稳定性是评估工作中的重要内容之一,它是指列车运行图在实施过程中出现列车晚点的概率和消除晚点以及晚点传播的能力。本文介绍max-plus方法,并将该方法引入列车运行图稳定性评估工作。建立用以评价列车运行图稳定性的恢复矩阵,提出评价的定量指标,并应用Matlab编程实现了恢复矩阵计算分析的自动化。Max-plus的应用需要与图论等方法结合,比较复杂,应进一步研究。 展开更多
关键词 列车运行图 评价 max-plus方法 稳定性
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MAX-plusⅡ仿真在VHDL课程设计教学改革中的应用
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作者 谭超 席在芳 《福建电脑》 2017年第3期56-57,共2页
电子通信等信息类专业注重所学理论与实践动手能力相结合,在VHDL课程设计教学中更应该注重这点。将MAX-plusⅡ仿真引入VHDL课程设计教学中,以一个具体的二人抢答器电路设计仿真实例进行展开,可形成理论学习与动手实践相结合的创新教学... 电子通信等信息类专业注重所学理论与实践动手能力相结合,在VHDL课程设计教学中更应该注重这点。将MAX-plusⅡ仿真引入VHDL课程设计教学中,以一个具体的二人抢答器电路设计仿真实例进行展开,可形成理论学习与动手实践相结合的创新教学模式。该模式不仅可以使VHDL课程设计教学变得生动灵活,更加有利于提高学生们的创新创造、动手实践能力,增强教与学之间沟通,从而提高VHDL课程设计的教学效果。 展开更多
关键词 max-plusⅡ仿真 VHDL 课程设计 教学改革
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MAX-PLUSⅡ软件在数字系统设计中的应用 被引量:3
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作者 张郁辉 王仲训 杨尚明 《青岛大学学报(工程技术版)》 CAS 2001年第4期98-100,共3页
通过具体实例介绍了MAX
关键词 电子设计自动化 层次化设计 电路系统 max-plusⅡ软件 数字系统
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Max-plus代数中analogy-transitive矩阵及其本征问题 被引量:1
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作者 王绘莉 舒乾宇 王学平 《四川师范大学学报(自然科学版)》 CAS CSCD 北大核心 2014年第3期293-297,共5页
定义一类analogy-transitive矩阵,讨论其基本性质,给出判定一个矩阵是否为analogytransitive矩阵的判定定理及算法,最后讨论关于analogy-transitive矩阵的本征问题.对于analogytransitive矩阵,存在一个O(n2)的算法计算其唯一本征值λ(A... 定义一类analogy-transitive矩阵,讨论其基本性质,给出判定一个矩阵是否为analogytransitive矩阵的判定定理及算法,最后讨论关于analogy-transitive矩阵的本征问题.对于analogytransitive矩阵,存在一个O(n2)的算法计算其唯一本征值λ(A)和所有本征向量x=(x1,…,xn)使得max j=1,…,n(aij+xj)=λ+xi(i=1,…,n).该结果较一般情况下O(n3)的算法有所改进. 展开更多
关键词 max-plus代数 analogy-transitive矩阵 极大圈平均 本征问题 本征值 本征向量 本征空间
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基于Max-plus代数法的市域铁路快慢车运行特性 被引量:2
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作者 郑翔 徐行方 +1 位作者 刘薇 鲁玉 《城市轨道交通研究》 北大核心 2023年第9期1-7,14,共8页
目的:为编制市域铁路快慢车模式的运行计划和检验快慢车方案的鲁棒性,针对快慢车运行特点,提出一种基于Max-plus代数法的市域铁路快慢车运行系统的闭环模型。方法:将列车运行系统作为典型的离散事件动态系统,定义其模型变量与参数,同时... 目的:为编制市域铁路快慢车模式的运行计划和检验快慢车方案的鲁棒性,针对快慢车运行特点,提出一种基于Max-plus代数法的市域铁路快慢车运行系统的闭环模型。方法:将列车运行系统作为典型的离散事件动态系统,定义其模型变量与参数,同时定义系统约束规则;基于Max-plus代数法建立列车运行系统Max-plus开环线性模型,并进行了快慢车模式下开环线性模型的变换;基于Max-plus代数法建立列车运行系统Max-plus闭环线性模型,并以一段计划开行快慢车的市域铁路作为算例,对该算例建立闭环模型,并求解与分析输出演化过程,最后通过状态转移变量矩阵的求解结果生成列车运行时刻表。结果及结论:该算例的快慢车运行系统稳定,一个周期系统的缓冲时间为291 s;通过单参数摄动情形下的鲁棒性分析获得了使快慢车运行系统保持运行一致均衡性的摄动元取值区间;首班车在始发站的出发时刻不具备鲁棒性,当第4列列车为快车时,其越行后成为第3列列车,该列车在越行站越行时刻不具备鲁棒性。 展开更多
关键词 市域铁路 max-plus代数法 快慢车
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The Relation between the Stabilization Problem for Discrete Event Systems Modeled with Timed Petri Nets via Lyapunov Methods and Max-Plus Algebra 被引量:2
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作者 Zvi Retchkiman Konigsberg 《Journal of Applied Mathematics and Physics》 2015年第7期839-845,共7页
A discrete event system is a dynamical system whose state evolves in time by the occurrence of events at possibly irregular time intervals. Timed Petri nets are a graphical and mathematical modeling tool applicable to... A discrete event system is a dynamical system whose state evolves in time by the occurrence of events at possibly irregular time intervals. Timed Petri nets are a graphical and mathematical modeling tool applicable to discrete event systems in order to represent its states evolution where the timing at which the state changes is taken into consideration. One of the most important performance issues to be considered in a discrete event system is its stability. Lyapunov theory provides the required tools needed to aboard the stability and stabilization problems for discrete event systems modeled with timed Petri nets whose mathematical model is given in terms of difference equations. By proving stability one guarantees a bound on the discrete event systems state dynamics. When the system is unstable, a sufficient condition to stabilize the system is given. It is shown that it is possible to restrict the discrete event systems state space in such a way that boundedness is achieved. However, the restriction is not numerically precisely known. This inconvenience is overcome by considering a specific recurrence equation, in the max-plus algebra, which is assigned to the timed Petri net graphical model. 展开更多
关键词 Discrete Event Systems LYAPUNOV Methods max-plus ALGEBRA TIMED PETRI NETS
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Max-plus代数下区间方程组的一般解
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作者 王利华 李炜 +1 位作者 贾胜男 郭瑞丽 《杭州电子科技大学学报(自然科学版)》 2018年第4期94-97,共4页
通过区间一般线性方程组的AE解的研究,在max-plus代数的结构下,定义了区间方程组基于逻辑运算符的一般解,继而建立了max-plus代数下一般解的充要条件。
关键词 极大代数一般解 区间方程组 max-plus代数结构
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Max-plus代数上区间线性不等式系统的EA解
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作者 许倩倩 李炜 王利华 《杭州电子科技大学学报(自然科学版)》 2019年第2期82-84,90,共4页
引入了max-plus代数上区间线性不等式系统EA解的概念,研究了该系统下EA解的特征。最后,给出关于max-plus代数上区间线性不等式系统的2个推论。
关键词 max-plus代数 区间线性系统 EA解
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Stochastic stabilization of Markovian jump cloud control systems based on max-plus algebra
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作者 WANG Jin YANG Hongjiu +1 位作者 XIA Yuanqing YAN Ce 《Journal of Systems Engineering and Electronics》 SCIE EI CSCD 2022年第4期827-834,共8页
In this paper, stochastic stabilization is investigated by max-plus algebra for a Markovian jump cloud control system with a reference signal. For the Markovian jump cloud control system, there exists framework adjust... In this paper, stochastic stabilization is investigated by max-plus algebra for a Markovian jump cloud control system with a reference signal. For the Markovian jump cloud control system, there exists framework adjustment whose evolution is satisfied with a Markov chain. Using max-plus algebra, a maxplus stochastic system is used to describe the Markovian jump cloud control system. A causal feedback matrix is obtained by exponential stability analysis for a causal feedback controller of the Markovian jump cloud control system. A sufficient condition is given to ensure existence on the causal feedback matrix of the causal feedback controller. Based on the causal feedback controller, stochastic stabilization in probability is analyzed for the Markovian jump cloud control system with a reference signal.Simulation results are given to show effectiveness of the causal feedback controller for the Markovian jump cloud control system. 展开更多
关键词 Markovian jump cloud control system causal feedback controller max-plus algebra max-product algebra stochastic stabilization
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Reduction and Analysis of a Max-Plus Linear System to a Constraint Satisfaction Problem for Mixed Integer Programming
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作者 Hajime Yokoyama Hiroyuki Goto 《American Journal of Operations Research》 2017年第2期113-120,共8页
This research develops a solution method for project scheduling represented by a max-plus-linear (MPL) form. Max-plus-linear representation is an approach to model and analyze a class of discrete-event systems, in whi... This research develops a solution method for project scheduling represented by a max-plus-linear (MPL) form. Max-plus-linear representation is an approach to model and analyze a class of discrete-event systems, in which the behavior of a target system is represented by linear equations in max-plus algebra. Several types of MPL equations can be reduced to a constraint satisfaction problem (CSP) for mixed integer programming. The resulting formulation is flexible and easy-to-use for project scheduling;for example, we can obtain the earliest output times, latest task-starting times, and latest input times using an MPL form. We also develop a key method for identifying critical tasks under the framework of CSP. The developed methods are validated through a numerical example. 展开更多
关键词 max-plus ALGEBRA Scheduling CRITICAL PATH CONSTRAINT SATISFACTION Problems Mixed INTEGER Programing
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基于Max-Plus代数的列车运行图稳定性分析方法研究
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作者 李义国 《中国铁路》 2023年第7期97-103,共7页
列车运行图是行车组织工作的基础,其稳定性关乎整个路网线路的运输效率和运营质量。为评估列车运行图的稳定性,通过分析列车运行间隔限制、接续限制、运行线路限制3类列车运行过程限制事件的逻辑关系,总结出列车运行过程具有典型离散事... 列车运行图是行车组织工作的基础,其稳定性关乎整个路网线路的运输效率和运营质量。为评估列车运行图的稳定性,通过分析列车运行间隔限制、接续限制、运行线路限制3类列车运行过程限制事件的逻辑关系,总结出列车运行过程具有典型离散事件动态系统(DEDS)特征;采用Max-Plus代数求解DEDS分析理论,探索Max-Plus代数与运行图限制事件的映射关联,建立列车运行图稳定性分析的Max-Plus代数模型;通过模型计算,求解Max-Plus代数最大特征值及运行余量时间矩阵、延迟传播时间矩阵,并以此定量评估列车运行图稳定性。经过实验算例的建模、计算及指标分析,表明采用Max-Plus代数可以科学评估列车运行图的稳定性。此分析方法可为铁路部门改善运行图铺画质量、降低晚点造成的影响,提供有效的参考。 展开更多
关键词 列车运行图 稳定性 max-plus代数 模型 矩阵
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Method for Estimating the State of Health of Lithium-ion Batteries Based on Differential Thermal Voltammetry and Sparrow Search Algorithm-Elman Neural Network 被引量:1
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作者 Yu Zhang Daoyu Zhang TiezhouWu 《Energy Engineering》 EI 2025年第1期203-220,共18页
Precisely estimating the state of health(SOH)of lithium-ion batteries is essential for battery management systems(BMS),as it plays a key role in ensuring the safe and reliable operation of battery systems.However,curr... Precisely estimating the state of health(SOH)of lithium-ion batteries is essential for battery management systems(BMS),as it plays a key role in ensuring the safe and reliable operation of battery systems.However,current SOH estimation methods often overlook the valuable temperature information that can effectively characterize battery aging during capacity degradation.Additionally,the Elman neural network,which is commonly employed for SOH estimation,exhibits several drawbacks,including slow training speed,a tendency to become trapped in local minima,and the initialization of weights and thresholds using pseudo-random numbers,leading to unstable model performance.To address these issues,this study addresses the challenge of precise and effective SOH detection by proposing a method for estimating the SOH of lithium-ion batteries based on differential thermal voltammetry(DTV)and an SSA-Elman neural network.Firstly,two health features(HFs)considering temperature factors and battery voltage are extracted fromthe differential thermal voltammetry curves and incremental capacity curves.Next,the Sparrow Search Algorithm(SSA)is employed to optimize the initial weights and thresholds of the Elman neural network,forming the SSA-Elman neural network model.To validate the performance,various neural networks,including the proposed SSA-Elman network,are tested using the Oxford battery aging dataset.The experimental results demonstrate that the method developed in this study achieves superior accuracy and robustness,with a mean absolute error(MAE)of less than 0.9%and a rootmean square error(RMSE)below 1.4%. 展开更多
关键词 Lithium-ion battery state of health differential thermal voltammetry Sparrow Search algorithm
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Robustness Optimization Algorithm with Multi-Granularity Integration for Scale-Free Networks Against Malicious Attacks 被引量:1
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作者 ZHANG Yiheng LI Jinhai 《昆明理工大学学报(自然科学版)》 北大核心 2025年第1期54-71,共18页
Complex network models are frequently employed for simulating and studyingdiverse real-world complex systems.Among these models,scale-free networks typically exhibit greater fragility to malicious attacks.Consequently... Complex network models are frequently employed for simulating and studyingdiverse real-world complex systems.Among these models,scale-free networks typically exhibit greater fragility to malicious attacks.Consequently,enhancing the robustness of scale-free networks has become a pressing issue.To address this problem,this paper proposes a Multi-Granularity Integration Algorithm(MGIA),which aims to improve the robustness of scale-free networks while keeping the initial degree of each node unchanged,ensuring network connectivity and avoiding the generation of multiple edges.The algorithm generates a multi-granularity structure from the initial network to be optimized,then uses different optimization strategies to optimize the networks at various granular layers in this structure,and finally realizes the information exchange between different granular layers,thereby further enhancing the optimization effect.We propose new network refresh,crossover,and mutation operators to ensure that the optimized network satisfies the given constraints.Meanwhile,we propose new network similarity and network dissimilarity evaluation metrics to improve the effectiveness of the optimization operators in the algorithm.In the experiments,the MGIA enhances the robustness of the scale-free network by 67.6%.This improvement is approximately 17.2%higher than the optimization effects achieved by eight currently existing complex network robustness optimization algorithms. 展开更多
关键词 complex network model MULTI-GRANULARITY scale-free networks ROBUSTNESS algorithm integration
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Short-TermWind Power Forecast Based on STL-IAOA-iTransformer Algorithm:A Case Study in Northwest China 被引量:2
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作者 Zhaowei Yang Bo Yang +5 位作者 Wenqi Liu Miwei Li Jiarong Wang Lin Jiang Yiyan Sang Zhenning Pan 《Energy Engineering》 2025年第2期405-430,共26页
Accurate short-term wind power forecast technique plays a crucial role in maintaining the safety and economic efficiency of smart grids.Although numerous studies have employed various methods to forecast wind power,th... Accurate short-term wind power forecast technique plays a crucial role in maintaining the safety and economic efficiency of smart grids.Although numerous studies have employed various methods to forecast wind power,there remains a research gap in leveraging swarm intelligence algorithms to optimize the hyperparameters of the Transformer model for wind power prediction.To improve the accuracy of short-term wind power forecast,this paper proposes a hybrid short-term wind power forecast approach named STL-IAOA-iTransformer,which is based on seasonal and trend decomposition using LOESS(STL)and iTransformer model optimized by improved arithmetic optimization algorithm(IAOA).First,to fully extract the power data features,STL is used to decompose the original data into components with less redundant information.The extracted components as well as the weather data are then input into iTransformer for short-term wind power forecast.The final predicted short-term wind power curve is obtained by combining the predicted components.To improve the model accuracy,IAOA is employed to optimize the hyperparameters of iTransformer.The proposed approach is validated using real-generation data from different seasons and different power stations inNorthwest China,and ablation experiments have been conducted.Furthermore,to validate the superiority of the proposed approach under different wind characteristics,real power generation data fromsouthwestChina are utilized for experiments.Thecomparative results with the other six state-of-the-art prediction models in experiments show that the proposed model well fits the true value of generation series and achieves high prediction accuracy. 展开更多
关键词 Short-termwind power forecast improved arithmetic optimization algorithm iTransformer algorithm SimuNPS
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A LODBO algorithm for multi-UAV search and rescue path planning in disaster areas 被引量:1
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作者 Liman Yang Xiangyu Zhang +2 位作者 Zhiping Li Lei Li Yan Shi 《Chinese Journal of Aeronautics》 2025年第2期200-213,共14页
In disaster relief operations,multiple UAVs can be used to search for trapped people.In recent years,many researchers have proposed machine le arning-based algorithms,sampling-based algorithms,and heuristic algorithms... In disaster relief operations,multiple UAVs can be used to search for trapped people.In recent years,many researchers have proposed machine le arning-based algorithms,sampling-based algorithms,and heuristic algorithms to solve the problem of multi-UAV path planning.The Dung Beetle Optimization(DBO)algorithm has been widely applied due to its diverse search patterns in the above algorithms.However,the update strategies for the rolling and thieving dung beetles of the DBO algorithm are overly simplistic,potentially leading to an inability to fully explore the search space and a tendency to converge to local optima,thereby not guaranteeing the discovery of the optimal path.To address these issues,we propose an improved DBO algorithm guided by the Landmark Operator(LODBO).Specifically,we first use tent mapping to update the population strategy,which enables the algorithm to generate initial solutions with enhanced diversity within the search space.Second,we expand the search range of the rolling ball dung beetle by using the landmark factor.Finally,by using the adaptive factor that changes with the number of iterations.,we improve the global search ability of the stealing dung beetle,making it more likely to escape from local optima.To verify the effectiveness of the proposed method,extensive simulation experiments are conducted,and the result shows that the LODBO algorithm can obtain the optimal path using the shortest time compared with the Genetic Algorithm(GA),the Gray Wolf Optimizer(GWO),the Whale Optimization Algorithm(WOA)and the original DBO algorithm in the disaster search and rescue task set. 展开更多
关键词 Unmanned aerial vehicle Path planning Meta heuristic algorithm DBO algorithm NP-hard problems
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Research on Euclidean Algorithm and Reection on Its Teaching
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作者 ZHANG Shaohua 《应用数学》 北大核心 2025年第1期308-310,共3页
In this paper,we prove that Euclid's algorithm,Bezout's equation and Divi-sion algorithm are equivalent to each other.Our result shows that Euclid has preliminarily established the theory of divisibility and t... In this paper,we prove that Euclid's algorithm,Bezout's equation and Divi-sion algorithm are equivalent to each other.Our result shows that Euclid has preliminarily established the theory of divisibility and the greatest common divisor.We further provided several suggestions for teaching. 展开更多
关键词 Euclid's algorithm Division algorithm Bezout's equation
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DDoS Attack Autonomous Detection Model Based on Multi-Strategy Integrate Zebra Optimization Algorithm
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作者 Chunhui Li Xiaoying Wang +2 位作者 Qingjie Zhang Jiaye Liang Aijing Zhang 《Computers, Materials & Continua》 SCIE EI 2025年第1期645-674,共30页
Previous studies have shown that deep learning is very effective in detecting known attacks.However,when facing unknown attacks,models such as Deep Neural Networks(DNN)combined with Long Short-Term Memory(LSTM),Convol... Previous studies have shown that deep learning is very effective in detecting known attacks.However,when facing unknown attacks,models such as Deep Neural Networks(DNN)combined with Long Short-Term Memory(LSTM),Convolutional Neural Networks(CNN)combined with LSTM,and so on are built by simple stacking,which has the problems of feature loss,low efficiency,and low accuracy.Therefore,this paper proposes an autonomous detectionmodel for Distributed Denial of Service attacks,Multi-Scale Convolutional Neural Network-Bidirectional Gated Recurrent Units-Single Headed Attention(MSCNN-BiGRU-SHA),which is based on a Multistrategy Integrated Zebra Optimization Algorithm(MI-ZOA).The model undergoes training and testing with the CICDDoS2019 dataset,and its performance is evaluated on a new GINKS2023 dataset.The hyperparameters for Conv_filter and GRU_unit are optimized using the Multi-strategy Integrated Zebra Optimization Algorithm(MIZOA).The experimental results show that the test accuracy of the MSCNN-BiGRU-SHA model based on the MIZOA proposed in this paper is as high as 0.9971 in the CICDDoS 2019 dataset.The evaluation accuracy of the new dataset GINKS2023 created in this paper is 0.9386.Compared to the MSCNN-BiGRU-SHA model based on the Zebra Optimization Algorithm(ZOA),the detection accuracy on the GINKS2023 dataset has improved by 5.81%,precisionhas increasedby 1.35%,the recallhas improvedby 9%,and theF1scorehas increasedby 5.55%.Compared to the MSCNN-BiGRU-SHA models developed using Grid Search,Random Search,and Bayesian Optimization,the MSCNN-BiGRU-SHA model optimized with the MI-ZOA exhibits better performance in terms of accuracy,precision,recall,and F1 score. 展开更多
关键词 Distributed denial of service attack intrusion detection deep learning zebra optimization algorithm multi-strategy integrated zebra optimization algorithm
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Bearing capacity prediction of open caissons in two-layered clays using five tree-based machine learning algorithms 被引量:1
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作者 Rungroad Suppakul Kongtawan Sangjinda +3 位作者 Wittaya Jitchaijaroen Natakorn Phuksuksakul Suraparb Keawsawasvong Peem Nuaklong 《Intelligent Geoengineering》 2025年第2期55-65,共11页
Open caissons are widely used in foundation engineering because of their load-bearing efficiency and adaptability in diverse soil conditions.However,accurately predicting their undrained bearing capacity in layered so... Open caissons are widely used in foundation engineering because of their load-bearing efficiency and adaptability in diverse soil conditions.However,accurately predicting their undrained bearing capacity in layered soils remains a complex challenge.This study presents a novel application of five ensemble machine(ML)algorithms-random forest(RF),gradient boosting machine(GBM),extreme gradient boosting(XGBoost),adaptive boosting(AdaBoost),and categorical boosting(CatBoost)-to predict the undrained bearing capacity factor(Nc)of circular open caissons embedded in two-layered clay on the basis of results from finite element limit analysis(FELA).The input dataset consists of 1188 numerical simulations using the Tresca failure criterion,varying in geometrical and soil parameters.The FELA was performed via OptumG2 software with adaptive meshing techniques and verified against existing benchmark studies.The ML models were trained on 70% of the dataset and tested on the remaining 30%.Their performance was evaluated using six statistical metrics:coefficient of determination(R²),mean absolute error(MAE),root mean squared error(RMSE),index of scatter(IOS),RMSE-to-standard deviation ratio(RSR),and variance explained factor(VAF).The results indicate that all the models achieved high accuracy,with R²values exceeding 97.6%and RMSE values below 0.02.Among them,AdaBoost and CatBoost consistently outperformed the other methods across both the training and testing datasets,demonstrating superior generalizability and robustness.The proposed ML framework offers an efficient,accurate,and data-driven alternative to traditional methods for estimating caisson capacity in stratified soils.This approach can aid in reducing computational costs while improving reliability in the early stages of foundation design. 展开更多
关键词 Two-layered clay Open caisson Tree-based algorithms FELA Machine learning
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Path Planning for Thermal Power Plant Fan Inspection Robot Based on Improved A^(*)Algorithm 被引量:1
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作者 Wei Zhang Tingfeng Zhang 《Journal of Electronic Research and Application》 2025年第1期233-239,共7页
To improve the efficiency and accuracy of path planning for fan inspection tasks in thermal power plants,this paper proposes an intelligent inspection robot path planning scheme based on an improved A^(*)algorithm.The... To improve the efficiency and accuracy of path planning for fan inspection tasks in thermal power plants,this paper proposes an intelligent inspection robot path planning scheme based on an improved A^(*)algorithm.The inspection robot utilizes multiple sensors to monitor key parameters of the fans,such as vibration,noise,and bearing temperature,and upload the data to the monitoring center.The robot’s inspection path employs the improved A^(*)algorithm,incorporating obstacle penalty terms,path reconstruction,and smoothing optimization techniques,thereby achieving optimal path planning for the inspection robot in complex environments.Simulation results demonstrate that the improved A^(*)algorithm significantly outperforms the traditional A^(*)algorithm in terms of total path distance,smoothness,and detour rate,effectively improving the execution efficiency of inspection tasks. 展开更多
关键词 Power plant fans Inspection robot Path planning Improved A^(*)algorithm
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Rapid pathologic grading-based diagnosis of esophageal squamous cell carcinoma via Raman spectroscopy and a deep learning algorithm 被引量:1
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作者 Xin-Ying Yu Jian Chen +2 位作者 Lian-Yu Li Feng-En Chen Qiang He 《World Journal of Gastroenterology》 2025年第14期32-46,共15页
BACKGROUND Esophageal squamous cell carcinoma is a major histological subtype of esophageal cancer.Many molecular genetic changes are associated with its occurrence.Raman spectroscopy has become a new method for the e... BACKGROUND Esophageal squamous cell carcinoma is a major histological subtype of esophageal cancer.Many molecular genetic changes are associated with its occurrence.Raman spectroscopy has become a new method for the early diagnosis of tumors because it can reflect the structures of substances and their changes at the molecular level.AIM To detect alterations in Raman spectral information across different stages of esophageal neoplasia.METHODS Different grades of esophageal lesions were collected,and a total of 360 groups of Raman spectrum data were collected.A 1D-transformer network model was proposed to handle the task of classifying the spectral data of esophageal squamous cell carcinoma.In addition,a deep learning model was applied to visualize the Raman spectral data and interpret their molecular characteristics.RESULTS A comparison among Raman spectral data with different pathological grades and a visual analysis revealed that the Raman peaks with significant differences were concentrated mainly at 1095 cm^(-1)(DNA,symmetric PO,and stretching vibration),1132 cm^(-1)(cytochrome c),1171 cm^(-1)(acetoacetate),1216 cm^(-1)(amide III),and 1315 cm^(-1)(glycerol).A comparison among the training results of different models revealed that the 1Dtransformer network performed best.A 93.30%accuracy value,a 96.65%specificity value,a 93.30%sensitivity value,and a 93.17%F1 score were achieved.CONCLUSION Raman spectroscopy revealed significantly different waveforms for the different stages of esophageal neoplasia.The combination of Raman spectroscopy and deep learning methods could significantly improve the accuracy of classification. 展开更多
关键词 Raman spectroscopy Esophageal neoplasia Early diagnosis Deep learning algorithm Rapid pathologic grading
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