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Data driven models for compressive strength prediction of concrete at high temperatures 被引量:1
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作者 Mahmood AKBARI Vahid JAFARI DELIGANI 《Frontiers of Structural and Civil Engineering》 SCIE EI CSCD 2020年第2期311-321,共11页
The use of data driven models has been shown to be useful for simulating complex engineering processes,when the only information available consists of the data of the process.In this study,four data-driven models,name... The use of data driven models has been shown to be useful for simulating complex engineering processes,when the only information available consists of the data of the process.In this study,four data-driven models,namely multiple linear regression,artificial neural network,adaptive neural fuzzy inference system,and K nearest neighbor models based on collection of 207 laboratory tests,are investigated for compressive strength prediction of concrete at high temperature.In addition for each model,two different sets of input variables are examined:a complete set and a parsimonious set of involved variables.The results obtained are compared with each other and also to the equations of NIST Technical Note standard and demonstrate the suitability of using the data driven models to predict the compressive strength at high temperature.In addition,the results show employing the parsimonious set of input variables is sufficient for the data driven models to make satisfactory results. 展开更多
关键词 data driven model compressive strength oncrete high temperature
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Full field reservoir modeling of shale assets using advanced data-driven analytics 被引量:10
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作者 Soodabeh Esmaili Shahab D.Mohaghegh 《Geoscience Frontiers》 SCIE CAS CSCD 2016年第1期11-20,共10页
Hydrocarbon production from shale has attracted much attention in the recent years. When applied to this prolific and hydrocarbon rich resource plays, our understanding of the complexities of the flow mechanism(sorpt... Hydrocarbon production from shale has attracted much attention in the recent years. When applied to this prolific and hydrocarbon rich resource plays, our understanding of the complexities of the flow mechanism(sorption process and flow behavior in complex fracture systems- induced or natural) leaves much to be desired. In this paper, we present and discuss a novel approach to modeling, history matching of hydrocarbon production from a Marcellus shale asset in southwestern Pennsylvania using advanced data mining, pattern recognition and machine learning technologies. In this new approach instead of imposing our understanding of the flow mechanism, the impact of multi-stage hydraulic fractures, and the production process on the reservoir model, we allow the production history, well log, completion and hydraulic fracturing data to guide our model and determine its behavior. The uniqueness of this technology is that it incorporates the so-called "hard data" directly into the reservoir model, so that the model can be used to optimize the hydraulic fracture process. The "hard data" refers to field measurements during the hydraulic fracturing process such as fluid and proppant type and amount, injection pressure and rate as well as proppant concentration. This novel approach contrasts with the current industry focus on the use of "soft data"(non-measured, interpretive data such as frac length, width,height and conductivity) in the reservoir models. The study focuses on a Marcellus shale asset that includes 135 wells with multiple pads, different landing targets, well length and reservoir properties. The full field history matching process was successfully completed using this data driven approach thus capturing the production behavior with acceptable accuracy for individual wells and for the entire asset. 展开更多
关键词 Reservoir modeling data driven reservoir modeling Top-down modeling Shale reservoir modelING SHALE
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Product Data Model for Performance-driven Design 被引量:2
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作者 Guang-Zhong Hu Xin-Jian Xu +2 位作者 Shou-Ne Xiao Guang-Wu Yang Fan Pu 《Chinese Journal of Mechanical Engineering》 SCIE EI CAS CSCD 2017年第5期1112-1122,共11页
When designing large-sized complex machinery products, the design focus is always on the overall per- formance; however, there exist no design theory and method based on performance driven. In view of the defi- ciency... When designing large-sized complex machinery products, the design focus is always on the overall per- formance; however, there exist no design theory and method based on performance driven. In view of the defi- ciency of the existing design theory, according to the performance features of complex mechanical products, the performance indices are introduced into the traditional design theory of "Requirement-Function-Structure" to construct a new five-domain design theory of "Client Requirement-Function-Performance-Structure-Design Parameter". To support design practice based on this new theory, a product data model is established by using per- formance indices and the mapping relationship between them and the other four domains. When the product data model is applied to high-speed train design and combining the existing research result and relevant standards, the corresponding data model and its structure involving five domains of high-speed trains are established, which can provide technical support for studying the relationships between typical performance indices and design parame- ters and the fast achievement of a high-speed train scheme design. The five domains provide a reference for the design specification and evaluation criteria of high speed train and a new idea for the train's parameter design. 展开更多
关键词 Complex product design Performance driven data model Mapping relationship High-speed train
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Data-driven Nonparametric Model Adaptive Precision Control for Linear Servo Systems 被引量:2
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作者 Rong-Min Cao Zhong-Sheng Hou Hui-Xing Zhou 《International Journal of Automation and computing》 EI CSCD 2014年第5期517-526,共10页
Nowadays, high-precision motion controls are needed in modern manufacturing industry. A data-driven nonparametric model adaptive control(NMAC) method is proposed in this paper to control the position of a linear servo... Nowadays, high-precision motion controls are needed in modern manufacturing industry. A data-driven nonparametric model adaptive control(NMAC) method is proposed in this paper to control the position of a linear servo system. The controller design requires no information about the structure of linear servo system, and it is based on the estimation and forecasting of the pseudo-partial derivatives(PPD) which are estimated according to the voltage input and position output of the linear motor. The characteristics and operational mechanism of the permanent magnet synchronous linear motor(PMSLM) are introduced, and the proposed nonparametric model control strategy has been compared with the classic proportional-integral-derivative(PID) control algorithm. Several real-time experiments on the motion control system incorporating a permanent magnet synchronous linear motor showed that the nonparametric model adaptive control method improved the system s response to disturbances and its position-tracking precision, even for a nonlinear system with incompletely known dynamic characteristics. 展开更多
关键词 data-driven control nonparametric model adaptive control precision motion control permanent magnet synchronous linear motor ROBUSTNESS
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Data-Driven Model Identification and Control of the Inertial Systems
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作者 Irina Cojuhari 《Intelligent Control and Automation》 2023年第1期1-18,共18页
In the synthesis of the control algorithm for complex systems, we are often faced with imprecise or unknown mathematical models of the dynamical systems, or even with problems in finding a mathematical model of the sy... In the synthesis of the control algorithm for complex systems, we are often faced with imprecise or unknown mathematical models of the dynamical systems, or even with problems in finding a mathematical model of the system in the open loop. To tackle these difficulties, an approach of data-driven model identification and control algorithm design based on the maximum stability degree criterion is proposed in this paper. The data-driven model identification procedure supposes the finding of the mathematical model of the system based on the undamped transient response of the closed-loop system. The system is approximated with the inertial model, where the coefficients are calculated based on the values of the critical transfer coefficient, oscillation amplitude and period of the underdamped response of the closed-loop system. The data driven control design supposes that the tuning parameters of the controller are calculated based on the parameters obtained from the previous step of system identification and there are presented the expressions for the calculation of the tuning parameters. The obtained results of data-driven model identification and algorithm for synthesis the controller were verified by computer simulation. 展开更多
关键词 data-driven model Identification Controller Tuning Undamped Transient Response Closed-Loop System Identification PID Controller
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A Data-Driven Simulation Model for China Haze Monitor and Governance
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作者 Xiaoyan Lu Hong Chen +1 位作者 Miao Wang Zhengying Cai 《World Journal of Engineering and Technology》 2016年第2期374-381,共8页
Recently, the China haze becomes more and more serious, but it is very difficult to model and control it. Here, a data-driven model is introduced for the simulation and monitoring of China haze. First, a multi-dimensi... Recently, the China haze becomes more and more serious, but it is very difficult to model and control it. Here, a data-driven model is introduced for the simulation and monitoring of China haze. First, a multi-dimensional evaluation system is built to evaluate the government performance of China haze. Second, a data-driven model is employed to reveal the operation mechanism of China’s haze and is described as a multi input and multi output system. Third, a prototype system is set up to verify the proposed scheme, and the result provides us with a graphical tool to monitor different haze control strategies. 展开更多
关键词 data-driven Haze Monitor MIMO Simulation model
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A Data-Driven Car-Following Model Based on the Random Forest
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作者 Huili Shi Tingli Wang +3 位作者 Fusheng Zhong Hanqing Wang Junyan Han Xiaoyuan Wang 《World Journal of Engineering and Technology》 2021年第3期503-515,共13页
The car-following models are the research basis of traffic flow theory and microscopic traffic simulation. Among the previous work, the theory-driven models are dominant, while the data-driven ones are relatively rare... The car-following models are the research basis of traffic flow theory and microscopic traffic simulation. Among the previous work, the theory-driven models are dominant, while the data-driven ones are relatively rare. In recent years, the related technologies of Intelligent Transportation System (ITS) re</span><span style="font-family:Verdana;">- </span><span style="font-family:Verdana;">presented by the Vehicles to Everything (V2X) technology have been developing rapidly. Utilizing the related technologies of ITS, the large-scale vehicle microscopic trajectory data with high quality can be acquired, which provides the research foundation for modeling the car-following behavior based on the data-driven methods. According to this point, a data-driven car-following model based on the Random Forest (RF) method was constructed in this work, and the Next Generation Simulation (NGSIM) dataset was used to calibrate and train the constructed model. The Artificial Neural Network (ANN) model, GM model, and Full Velocity Difference (FVD) model are em</span><span style="font-family:Verdana;">- </span><span style="font-family:Verdana;">ployed to comparatively verify the proposed model. The research results suggest that the model proposed in this work can accurately describe the car-</span><span style="font-family:Verdana;"> </span><span style="font-family:Verdana;">following behavior with better performance under multiple performance indicators. 展开更多
关键词 Traffic Flow Car-Following model data-driven Method Random Forest Intelligent Transportation System
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Performance Monitoring of the Data-driven Subspace Predictive Control Systems Based on Historical Objective Function Benchmark 被引量:3
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作者 王陆 李柠 李少远 《自动化学报》 EI CSCD 北大核心 2013年第5期542-547,共6页
关键词 预测控制系统 性能监控 数据驱动 子空间 历史 基准 监视控制器 目标函数
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Data-driven computing in elasticity via kernel regression 被引量:2
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作者 Yoshihiro Kanno 《Theoretical & Applied Mechanics Letters》 CAS CSCD 2018年第6期361-365,I0003,共6页
This paper presents a simple nonparametric regression approach to data-driven computing in elasticity. We apply the kernel regression to the material data set, and formulate a system of nonlinear equations solved to o... This paper presents a simple nonparametric regression approach to data-driven computing in elasticity. We apply the kernel regression to the material data set, and formulate a system of nonlinear equations solved to obtain a static equilibrium state of an elastic structure. Preliminary numerical experiments illustrate that, compared with existing methods, the proposed method finds a reasonable solution even if data points distribute coarsely in a given material data set. 展开更多
关键词 data-driven computational mechanics model-free method Nonparametric method Kernel regression Nadaraya–Watson estimator
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DATA DRIVEN控制方式图象理解系统的结构性能及改进
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作者 李力 《北方工业大学学报》 1989年第3期78-82,共5页
本文是以图象理解系统实例分析入手,较详尽地论述了采用DATADRIVEN控制方式的线画解释图象理解系统的硬软件结构,并在评估了系统的可靠性基础上,提出了采用数据驱动和模型驱动双向控制的新观点.
关键词 图象理解 双向控制 结画解释
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Data driven composite shape descriptor design for shape retrieval with a VoR-Tree
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作者 WANG Zi-hao LIN Hong-wei XU Chen-kai 《Applied Mathematics(A Journal of Chinese Universities)》 SCIE CSCD 2018年第1期88-106,共19页
We develop a data driven method(probability model) to construct a composite shape descriptor by combining a pair of scale-based shape descriptors. The selection of a pair of scale-based shape descriptors is modeled as... We develop a data driven method(probability model) to construct a composite shape descriptor by combining a pair of scale-based shape descriptors. The selection of a pair of scale-based shape descriptors is modeled as the computation of the union of two events, i.e.,retrieving similar shapes by using a single scale-based shape descriptor. The pair of scale-based shape descriptors with the highest probability forms the composite shape descriptor. Given a shape database, the composite shape descriptors for the shapes constitute a planar point set.A VoR-Tree of the planar point set is then used as an indexing structure for efficient query operation. Experiments and comparisons show the effectiveness and efficiency of the proposed composite shape descriptor. 展开更多
关键词 shape descriptor shape retrieval shape analysis data-driven model
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Performance of a data-driven technique applied to changes in wave height and its effect on beach response 被引量:1
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作者 José M.Horrillo-Caraballo Harshinie Karunarathna +1 位作者 Shun-qi Pan Dominic Reeve 《Water Science and Engineering》 EI CAS CSCD 2016年第1期42-51,共10页
In this study the medium-term response of beach profiles was investigated at two sites: a gently sloping sandy beach and a steeper mixed sand and gravel beach. The former is the Duck site in North Carolina, on the ea... In this study the medium-term response of beach profiles was investigated at two sites: a gently sloping sandy beach and a steeper mixed sand and gravel beach. The former is the Duck site in North Carolina, on the east coast of the USA, which is exposed to Atlantic Ocean swells and storm waves, and the latter is the Milford-on-Sea site at Christchurch Bay, on the south coast of England, which is partially sheltered from Atlantic swells but has a directionally bimodal wave exposure. The data sets comprise detailed bathymetric surveys of beach profiles covering a period of more than 25 years for the Duck site and over 18 years for the Milford-on-Sea site. The structure of the data sets and the data-driven methods are described. Canonical correlation analysis (CCA) was used to find linkages between the wave characteristics and beach profiles. The sensitivity of the linkages was investigated by deploying a wave height threshold to filter out the smaller waves incrementally. The results of the analysis indicate that, for the gently sloping sandy beach, waves of all heights are important to the morphological response. For the mixed sand and gravel beach, filtering the smaller waves improves the statistical fit and it suggests that low-height waves do not play a primary role in the medium-term morohological resoonse, which is primarily driven by the intermittent larger storm waves. 展开更多
关键词 Beach profile Canonical correlation analysis data-driven technique Empirical orthogonal function FORECAST Statistical model Wave height threshold
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A Data-Driven Adaptive Method for Attitude Control of Fixed-Wing Unmanned Aerial Vehicles 被引量:2
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作者 Meili Chen Yuan Wang 《Advances in Aerospace Science and Technology》 2019年第1期1-15,共15页
In this paper, a real-time online data-driven adaptive method is developed to deal with uncertainties such as high nonlinearity, strong coupling, parameter perturbation and external disturbances in attitude control of... In this paper, a real-time online data-driven adaptive method is developed to deal with uncertainties such as high nonlinearity, strong coupling, parameter perturbation and external disturbances in attitude control of fixed-wing unmanned aerial vehicles (UAVs). Firstly, a model-free adaptive control (MFAC) method requiring only input/output (I/O) data and no model information is adopted for control scheme design of angular velocity subsystem which contains all model information and up-mentioned uncertainties. Secondly, the internal model control (IMC) method featured with less tuning parameters and convenient tuning process is adopted for control scheme design of the certain Euler angle subsystem. Simulation results show that, the method developed is obviously superior to the cascade PID (CPID) method and the nonlinear dynamic inversion (NDI) method. 展开更多
关键词 data-driven Adaptive Method ATTITUDE CONTROL Unmanned AERIAL Vehicles (UAV) Internal model CONTROL
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基于数据的高校学生学业水平关联智能分析
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作者 李世鹏 李双儒 赵梓焱 《控制工程》 北大核心 2026年第1期22-29,共8页
学业水平是衡量高校学生综合能力的关键指标。为了精准预测学生综合学业水平,通过数据驱动的关联建模,探究德育和体育课程与学生综合学业水平之间的关系。首先,以学生的德育和体育课程成绩为原始特征,构建了逻辑回归和支持向量机等多种... 学业水平是衡量高校学生综合能力的关键指标。为了精准预测学生综合学业水平,通过数据驱动的关联建模,探究德育和体育课程与学生综合学业水平之间的关系。首先,以学生的德育和体育课程成绩为原始特征,构建了逻辑回归和支持向量机等多种机器学习模型,并引入特征工程构建多重特征,提高了模型的预测性能;然后,基于堆叠模型的框架,实现了多种机器学习模型的深度融合,并通过递归特征消除法优化堆叠模型。实验通过自动化专业学生的成绩数据对所提模型进行验证。实验结果表明,所构建的堆叠模型在学生综合学业水平的预测中取得了较好的准确性和稳定性,其预测准确率能够达到93%,从而验证了德育和体育与学生综合学业水平之间存在明显的正向关联,凸显了在“五育并举”视域下德育和体育对学生综合能力培养的重要性。 展开更多
关键词 五育并举 机器学习 数据驱动建模 堆叠模型 学业水平预测
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铁路列车群运行多智能体感知模型与仿真
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作者 骆晖 《铁道运输与经济》 北大核心 2026年第1期141-150,共10页
为探讨铁路高精度与智能化运行仿真,研究铁路工程数据驱动建模与列车群多智能体自主感知仿真理论与方法。首先以工程勘察设计数据驱动生成线路等矢量数据模型,构建轨道区段、信号机、道岔、列车等智能体模型;其次研究单列车自主感知控... 为探讨铁路高精度与智能化运行仿真,研究铁路工程数据驱动建模与列车群多智能体自主感知仿真理论与方法。首先以工程勘察设计数据驱动生成线路等矢量数据模型,构建轨道区段、信号机、道岔、列车等智能体模型;其次研究单列车自主感知控制模型的构建与运行;最后通过构建CTC智能体实现数据感知与处理分析、列车群运行状态的动态监控与调度,完成列车群自主仿真运行。仿真实验结果表明,在CTC智能体的智能监测和决策下,单列车及列车群模型可实现安全、高效地仿真运行。研究通过数据驱动建模,解决传统仿真系统模型精度不足、建模效率低下的问题,通过CTC智能体集中控制,实现列车群的协同仿真与自主决策,为构建自主化、智能化的铁路运输仿真系统提供了理论支撑和技术路径,为铁路线路及车站设计、能力评估提供高可信度仿真工具。 展开更多
关键词 数据驱动建模 铁路运行仿真 列车群多智能体 CTC智能体 自主感知控制
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融合知识规则数据算法模型驱动下的商标侵权价值评估研究
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作者 鲍新中 李晓月 高峰 《北京联合大学学报(人文社会科学版)》 2026年第1期21-31,共11页
针对制售假冒伪劣商品等侵犯商标权民事案件中存在的侵权价值难以评估的问题,文章基于历史相关案件判决信息抽取,试图提出一种融合知识规则的商标侵权价值评估数据算法模型。即以司法解释、涉假民事案件历史判决及商标价值评估所需相关... 针对制售假冒伪劣商品等侵犯商标权民事案件中存在的侵权价值难以评估的问题,文章基于历史相关案件判决信息抽取,试图提出一种融合知识规则的商标侵权价值评估数据算法模型。即以司法解释、涉假民事案件历史判决及商标价值评估所需相关数据等信息要素为基础,建立包括嵌入数据驱动模型、反馈修正数据驱动结果和约束数据驱动结果3类规则的知识库,并将提取的知识规则融入基于机器学习的数据驱动模型,实现对商标侵权价值的评估,解决传统数据驱动方法引起的评估结果透明度和可解释性较差的问题,以期为一线办案人员提供快速决策依据,也为知识产权法庭判决提供决策支持。 展开更多
关键词 知识规则 数据驱动 商标侵权 价值评估 知识产权
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面向民机典型系统健康管理的故障诊断技术综述与展望
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作者 冯蕴雯 王锐 +1 位作者 陈俊宇 路成 《航空制造技术》 北大核心 2026年第1期14-34,共21页
民用飞机健康管理技术是保障航空安全、提升运维效率的有效手段,健康管理技术的实施离不开高效、先进的故障诊断技术。基于面向民用飞机典型系统健康管理的故障诊断技术发展需求,本文系统梳理了面向民用飞机健康管理的故障诊断技术方法... 民用飞机健康管理技术是保障航空安全、提升运维效率的有效手段,健康管理技术的实施离不开高效、先进的故障诊断技术。基于面向民用飞机典型系统健康管理的故障诊断技术发展需求,本文系统梳理了面向民用飞机健康管理的故障诊断技术方法,从模型驱动、知识驱动、数据驱动3个维度展开深入分析,进而总结各维度技术方法的优势、不足及适用场景,给出各维度技术的融合方法应用框架,并展望了民用飞机健康管理的整体发展趋势,为国产民用飞机健康管理技术的工程化应用提供理论参考与优化路径。 展开更多
关键词 民用飞机 健康管理 模型驱动 知识驱动 数据驱动
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660 MW火电机组全工况下凝结水节流动态模型的研究
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作者 卫龙飞 陈伟威 +1 位作者 郭志鹏 韩晓明 《现代电子技术》 北大核心 2026年第2期87-94,共8页
为解决火电机组中凝结水节流模型难以兼顾准确性、快速性和泛化性的问题,提出一种结合机理建模和数据驱动建模的混合建模方法,深入分析了凝结水节流对除氧器内部压力的动态影响,并引入参数辨识技术。首先,根据凝结水节流系统的动态特性... 为解决火电机组中凝结水节流模型难以兼顾准确性、快速性和泛化性的问题,提出一种结合机理建模和数据驱动建模的混合建模方法,深入分析了凝结水节流对除氧器内部压力的动态影响,并引入参数辨识技术。首先,根据凝结水节流系统的动态特性和静态特性,建立准确性高的复杂机理模型;其次,在保证模型精准度的前提下,借助数据驱动方法找到复杂模块中某些复杂变量之间的关系,降低模型的复杂度并提高模型的快速性;最终,采用粒子群优化(PSO)算法,根据所提出的关于负荷、除氧器容积和压力偏差的适应度函数,对不同工况下模型中未知参数进行辨识,提高模型的泛化性。仿真结果表明,在260 MW和450 MW工况下,所提模型的均方根误差(RMSE)、Pearson相关系数等评价指标均有较好表现。证明该模型具有较高的准确性、快速性和泛化性。 展开更多
关键词 火电机组 凝结水节流系统 动态模型 机理建模 数据驱动建模 粒子群优化算法 适应度函数
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基于全流程仿真机理数据的城市固废焚烧过程尾气排放建模与分析
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作者 汤健 王天峥 +4 位作者 夏恒 陈佳昆 梁永琪 庄家宾 乔俊飞 《北京工业大学学报》 北大核心 2026年第1期41-54,共14页
针对城市固废焚烧(municipal solid waste incineration,MSWI)过程中“布风布料”操作变量与尾气排放气体间的精确机理模型难以构建的问题,提出了基于全流程仿真机理数据的MSWI过程尾气排放建模与分析方法。首先,在进行面向操作变量与... 针对城市固废焚烧(municipal solid waste incineration,MSWI)过程中“布风布料”操作变量与尾气排放气体间的精确机理模型难以构建的问题,提出了基于全流程仿真机理数据的MSWI过程尾气排放建模与分析方法。首先,在进行面向操作变量与尾气排放的工艺流程描述的基础上,耦合流体动力焚烧代码(fluid dynamic incinerator code,FLIC)、Fluent和Aspen Plus这3种数值仿真软件对MSWI过程所包含的炉排固相燃烧、炉内气相燃烧、余热交换与烟气处理等阶段进行全流程模拟,进而获得基准运行工况下的数值仿真模型;接着,面向操作变量进行正交实验设计和实验实施,获得多种运行工况下仿真机理数据;最后,构建以操作变量为输入、以主要尾气排放为输出的基于多入多出线性回归决策树(multiple-input multiple-output least regression decision tree,MIMO-LRDT)的尾气排放模型,并分别采用单因素和双因素法可视化分析两者间的映射关系。采用面向北京某MSWI厂构建的数值仿真和数据驱动模型验证了所提方法的有效性。 展开更多
关键词 城市固废焚烧过程 尾气排放建模 数值仿真模型 仿真机理数据 数据驱动模型 多入多出线性回归决策树
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DataTurbo:一种插件化数据交换与集成工具
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作者 钱正平 齐德昱 《计算机应用研究》 CSCD 北大核心 2009年第10期3770-3773,3777,共5页
介绍了笔者研发的一种基于统一数据模型和扩展数据流模型实现的插件化数据交换和集成工具DataTurbo,它以示例驱动的界面引导用户将可配置的功能插件快速、灵活地组合构成数据流程,实现自动、稳健和高效的数据物化集成。统一数据模型降... 介绍了笔者研发的一种基于统一数据模型和扩展数据流模型实现的插件化数据交换和集成工具DataTurbo,它以示例驱动的界面引导用户将可配置的功能插件快速、灵活地组合构成数据流程,实现自动、稳健和高效的数据物化集成。统一数据模型降低了以往ETL工具使用中由数据存储格式和语义差异造成的复杂性,同时提高了插件和工具的可扩展性。扩展数据流模型支持流程事务的定义和基于共享状态的异步事件响应,前者通过模型变换,为流程添加易于理解的控制信息;后者允许系统快速响应异常事件。DataTurbo已经成功部署并服务于广州市番禺区、南沙区数据中心。 展开更多
关键词 数据集成 插件化 数据流 数据模型 示例驱动
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