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Deep Support Vector Data Description Based Physical Layer Authentication
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作者 Shao Yijie Pan Zhiwen +1 位作者 Liu Nan You Xiaohu 《China Communications》 2025年第10期214-222,共9页
In wireless communication,the problem of authenticating the transmitter’s identity is challeng-ing,especially for those terminal devices in which the security schemes based on cryptography are approxi-mately unfeasib... In wireless communication,the problem of authenticating the transmitter’s identity is challeng-ing,especially for those terminal devices in which the security schemes based on cryptography are approxi-mately unfeasible owing to limited resources.In this paper,a physical layer authentication scheme is pro-posed to detect whether there is anomalous access by the attackers disguised as legitimate users.Explicitly,channel state information(CSI)is used as a form of fingerprint to exploit spatial discrimination among de-vices in the wireless network and machine learning(ML)technology is employed to promote the improve-ment of authentication accuracy.Considering that the falsified messages are not accessible for authenticator during the training phase,deep support vector data de-scription(Deep SVDD)is selected to solve the one-class classification(OCC)problem.Simulation results show that Deep SVDD based scheme can tackle the challenges of physical layer authentication in wireless communication environments. 展开更多
关键词 deep support vector data description one-class classification physical layer authentication wireless security
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Multi-mode process monitoring based on a novel weighted local standardization strategy and support vector data description 被引量:9
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作者 赵付洲 宋冰 侍洪波 《Journal of Central South University》 SCIE EI CAS CSCD 2016年第11期2896-2905,共10页
There are multiple operating modes in the real industrial process, and the collected data follow the complex multimodal distribution, so most traditional process monitoring methods are no longer applicable because the... There are multiple operating modes in the real industrial process, and the collected data follow the complex multimodal distribution, so most traditional process monitoring methods are no longer applicable because their presumptions are that sampled-data should obey the single Gaussian distribution or non-Gaussian distribution. In order to solve these problems, a novel weighted local standardization(WLS) strategy is proposed to standardize the multimodal data, which can eliminate the multi-mode characteristics of the collected data, and normalize them into unimodal data distribution. After detailed analysis of the raised data preprocessing strategy, a new algorithm using WLS strategy with support vector data description(SVDD) is put forward to apply for multi-mode monitoring process. Unlike the strategy of building multiple local models, the developed method only contains a model without the prior knowledge of multi-mode process. To demonstrate the proposed method's validity, it is applied to a numerical example and a Tennessee Eastman(TE) process. Finally, the simulation results show that the WLS strategy is very effective to standardize multimodal data, and the WLS-SVDD monitoring method has great advantages over the traditional SVDD and PCA combined with a local standardization strategy(LNS-PCA) in multi-mode process monitoring. 展开更多
关键词 multiple operating modes weighted local standardization support vector data description multi-mode monitoring
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A New Vector Data Compression Approach for WebGIS 被引量:2
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作者 LIYunjin ZHONG Ershun 《Geo-Spatial Information Science》 2011年第1期48-53,共6页
High compression ratio,high decoding performance,and progressive data transmission are the most important require-ments of vector data compression algorithms for WebGIS.To meet these requirements,we present a new comp... High compression ratio,high decoding performance,and progressive data transmission are the most important require-ments of vector data compression algorithms for WebGIS.To meet these requirements,we present a new compression approach.This paper begins with the generation of multiscale data by converting float coordinates to integer coordinates.It is proved that the distance between the converted point and the original point on screen is within 2 pixels,and therefore,our approach is suitable for the visualization of vector data on the client side.Integer coordinates are passed to an Integer Wavelet Transformer,and the high-frequency coefficients produced by the transformer are encoded by Canonical Huffman codes.The experimental results on river data and road data demonstrate the effectiveness of the proposed approach:compression ratio can reach 10% for river data and 20% for road data,respectively.We conclude that more attention needs be paid to correlation between curves that contain a few points. 展开更多
关键词 vector data compression WEBGIS progressive data transmission
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A spatial decomposition approach for accelerating buffer analysis of vector data 被引量:1
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作者 Li Xiaohua Guo Mingqiang Qi Xinhong 《High Technology Letters》 EI CAS 2020年第4期455-459,共5页
Parallel vector buffer analysis approaches can be classified into 2 types:algorithm-oriented parallel strategy and the data-oriented parallel strategy.These methods do not take its applicability on the existing geogra... Parallel vector buffer analysis approaches can be classified into 2 types:algorithm-oriented parallel strategy and the data-oriented parallel strategy.These methods do not take its applicability on the existing geographic information systems(GIS)platforms into consideration.In order to address the problem,a spatial decomposition approach for accelerating buffer analysis of vector data is proposed.The relationship between the number of vertices of each feature and the buffer analysis computing time is analyzed to generate computational intensity transformation functions(CITFs).Then,computational intensity grids(CIGs)of polyline and polygon are constructed based on the relative CITFs.Using the corresponding CIGs,a spatial decomposition method for parallel buffer analysis is developed.Based on the computational intensity of the features and the sub-domains generated in the decomposition,the features are averagely assigned within the sub-domains into parallel buffer analysis tasks for load balance.Compared with typical regular domain decomposition methods,the new approach accomplishes greater balanced decomposition of computational intensity for parallel buffer analysis and achieves near-linear speedups. 展开更多
关键词 high performance spatial computing buffer analysis parallel computing load balancing vector data
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Assessment of distortion in watermarked geospatial vector data using different wavelets
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作者 Sangita ZOPE-CHAUDHARI Parvatham VENKATACHALAM Krishna Mohan BUDDHIRAJU 《Geo-Spatial Information Science》 SCIE CSCD 2015年第2期124-133,共10页
With the rapid growth of the Internet,the copyright protection problem occurs frequently,and unauthorized copying and distributing of geospatial data threaten the investments of data producers.Digital watermarking is ... With the rapid growth of the Internet,the copyright protection problem occurs frequently,and unauthorized copying and distributing of geospatial data threaten the investments of data producers.Digital watermarking is a possible solution to solve this issue.However,watermarking causes modifications in the original data resulting in distortion and affects accuracy,which is very important to geospatial vector data.This article provides distortion assessment of watermarked geospatial data using wavelet-based invisible watermarking.Eight wavelets at different wavelet decomposition levels are used for accuracy evaluation with the help of error measures such as maximum error and mean square error.Normalized correlation is used as a similarity index between original and extracted watermark.It is observed that the increase in the strength of embedding increases visual degradation.Haar wavelet outperforms the other wavelets,and the third wavelet decomposition level is proved to be optimal level for watermarking. 展开更多
关键词 digital watermarking geospatial vector data WAVELETS discrete wavelet transform(DWT) DISTORTION
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Multimode Process Monitoring Based on the Density-Based Support Vector Data Description
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作者 郭红杰 王帆 +2 位作者 宋冰 侍洪波 谭帅 《Journal of Donghua University(English Edition)》 EI CAS 2017年第3期342-348,共7页
Complex industry processes often need multiple operation modes to meet the change of production conditions. In the same mode,there are discrete samples belonging to this mode. Therefore,it is important to consider the... Complex industry processes often need multiple operation modes to meet the change of production conditions. In the same mode,there are discrete samples belonging to this mode. Therefore,it is important to consider the samples which are sparse in the mode.To solve this issue,a new approach called density-based support vector data description( DBSVDD) is proposed. In this article,an algorithm using Gaussian mixture model( GMM) with the DBSVDD technique is proposed for process monitoring. The GMM method is used to obtain the center of each mode and determine the number of the modes. Considering the complexity of the data distribution and discrete samples in monitoring process,the DBSVDD is utilized for process monitoring. Finally,the validity and effectiveness of the DBSVDD method are illustrated through the Tennessee Eastman( TE) process. 展开更多
关键词 Eastman Tennessee sparse utilized illustrated kernel Bayesian charts validity false
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Big spatial vector data management: a review 被引量:4
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作者 Xiaochuang Yao Guoqing Li 《Big Earth Data》 EI 2018年第1期108-129,共22页
Spatial vector data with high-precision and wide-coverage has exploded globally,such as land cover,social media,and other data-sets,which provides a good opportunity to enhance the national macroscopic decision-making... Spatial vector data with high-precision and wide-coverage has exploded globally,such as land cover,social media,and other data-sets,which provides a good opportunity to enhance the national macroscopic decision-making,social supervision,public services,and emergency capabilities.Simultaneously,it also brings great challenges in management technology for big spatial vector data(BSVD).In recent years,a large number of new concepts,parallel algorithms,processing tools,platforms,and applications have been proposed and developed to improve the value of BSVD from both academia and industry.To better understand BSVD and take advantage of its value effectively,this paper presents a review that surveys recent studies and research work in the data management field for BSVD.In this paper,we discuss and itemize this topic from three aspects according to different information technical levels of big spatial vector data management.It aims to help interested readers to learn about the latest research advances and choose the most suitable big data technologies and approaches depending on their system architectures.To support them more fully,firstly,we identify new concepts and ideas from numerous scholars about geographic information system to focus on BSVD scope in the big data era.Then,we conclude systematically not only the most recent published literatures but also a global view of main spatial technologies of BSVD,including data storage and organization,spatial index,processing methods,and spatial analysis.Finally,based on the above commentary and related work,several opportunities and challenges are listed as the future research interests and directions for reference. 展开更多
关键词 Big data vector data big spatial vector data(BSVD) big data management REVIEW
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A virtual globe-based vector data model:quaternary quadrangle vector tile model 被引量:4
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作者 Mengyun Zhou Jing Chen Jianya Gong 《International Journal of Digital Earth》 SCIE EI CSCD 2016年第3期230-251,共22页
This study proposes a virtual globe-based vector data model named the quaternary quadrangle vector tile model(QQVTM)in order to better manage,visualize,and analyze massive amounts of global multi-scale vector data.The... This study proposes a virtual globe-based vector data model named the quaternary quadrangle vector tile model(QQVTM)in order to better manage,visualize,and analyze massive amounts of global multi-scale vector data.The model integrates the quaternary quadrangle mesh(a discrete global grid system)and global image,terrain,and vector data.A QQVTM-based organization method is presented to organize global multi-scale vector data,including linear and polygonal vector data.In addition,tilebased reconstruction algorithms are designed to search and stitch the vector fragments scattered in tiles to reconstruct and store the entire vector geometries to support vector query and 3D analysis of global datasets.These organized vector data are in turn visualized and queried using a geometry-based approach.Our experimental results demonstrate that the QQVTM can satisfy the requirements for global vector data organization,visualization,and querying.Moreover,the QQVTM performs better than unorganized 2D vectors regarding rendering efficiency and better than the latitude–longitude-based approach regarding data redundancy. 展开更多
关键词 multi-resolution modeling discrete global grid system vector data organization tile-based reconstruction geometry-based rendering
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Image Processing on Geological Data in Vector Format and Multi-Source Spatial Data Fusion
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作者 Liu Xing Hu Guangdao Qiu Yubao Faculty of Earth Resources, China University of Geosciences, Wuhan 430074 《Journal of China University of Geosciences》 SCIE CSCD 2003年第3期278-282,共5页
The geological data are constructed in vector format in geographical information system (GIS) while other data such as remote sensing images, geographical data and geochemical data are saved in raster ones. This paper... The geological data are constructed in vector format in geographical information system (GIS) while other data such as remote sensing images, geographical data and geochemical data are saved in raster ones. This paper converts the vector data into 8 bit images according to their importance to mineralization each by programming. We can communicate the geological meaning with the raster images by this method. The paper also fuses geographical data and geochemical data with the programmed strata data. The result shows that image fusion can express different intensities effectively and visualize the structure characters in 2 dimensions. Furthermore, it also can produce optimized information from multi-source data and express them more directly. 展开更多
关键词 geological data GIS-based vector data conversion image processing multi-source data fusion
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A method for rapid transmission of multi-scale vector river data via the Internet 被引量:1
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作者 Yang Weifang Jonathon Li 《Geodesy and Geodynamics》 2012年第2期34-41,共8页
Due to the conflict between huge amount of map data and limited network bandwidth, rapid trans- mission of vector map data over the Internet has become a bottleneck of spatial data delivery in web-based environment. T... Due to the conflict between huge amount of map data and limited network bandwidth, rapid trans- mission of vector map data over the Internet has become a bottleneck of spatial data delivery in web-based environment. This paper proposed an approach to organizing and transmitting multi-scale vector river network data via the Internet progressively. This approach takes account of two levels of importance, i.e. the importance of river branches and the importance of the points belonging to each river branch, and forms data packages ac- cording to these. Our experiments have shown that the proposed approach can reduce 90% of original data while preserving the river structure well. 展开更多
关键词 vector river data MULTI-SCALE progressive transmission river structure
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A Support Vector Regression Approach for Recursive Simultaneous Data Reconciliation and Gross Error Detection in Nonlinear Dynamical Systems 被引量:3
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作者 MIAO Yu SU Hong-Ye CHU Jian 《自动化学报》 EI CSCD 北大核心 2009年第6期707-716,共10页
关键词 数据分析 自动化系统 智能系统 质量数据
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ENHANCED MULTISTAGE VECTOR QUANTIZATION FOR SAR RAW DATA COMPRESSION
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作者 Zhu Minhui Peng Hailiang Wu Yirong Qi Xuan(Institute of Electronics, Chinese Academy of Sciences, Beijing 100080) 《Journal of Electronics(China)》 1996年第2期97-101,共5页
Multistage Vector Quantization(MSVQ) can achieve very low encoding and storage complexity in comparison to unstructured vector quantization. However, the conventional MSVQ is suboptimal with respect to the overall per... Multistage Vector Quantization(MSVQ) can achieve very low encoding and storage complexity in comparison to unstructured vector quantization. However, the conventional MSVQ is suboptimal with respect to the overall performance measure. This paper proposes a new technology to design the decoder codebook, which is different from the encoder codebook to optimise the overall performance. The performance improvement is achieved with no effect on encoding complexity, both storage and time consuming, but a modest increase in storage complexity of decoder. 展开更多
关键词 vector QUANTIZATION data compression SYNTHETIC APERTURE RADAR
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Data assimilation using support vector machines and ensemble Kalman filter for multi-layer soil moisture prediction 被引量:1
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作者 Di LIU Zhong-bo YU Hai-shen LV 《Water Science and Engineering》 EI CAS 2010年第4期361-377,共17页
Hybrid data assimilation (DA) is a method seeing more use in recent hydrology and water resources research. In this study, a DA method coupled with the support vector machines (SVMs) and the ensemble Kalman filter... Hybrid data assimilation (DA) is a method seeing more use in recent hydrology and water resources research. In this study, a DA method coupled with the support vector machines (SVMs) and the ensemble Kalman filter (EnKF) technology was used for the prediction of soil moisture in different soil layers: 0-5 cm, 30 cm, 50 cm, 100 cm, 200 cm, and 300 cm. The SVM methodology was first used to train the ground measurements of soil moisture and meteorological parameters from the Meilin study area, in East China, to construct soil moisture statistical prediction models. Subsequent observations and their statistics were used for predictions, with two approaches: the SVM predictor and the SVM-EnKF model made by coupling the SVM model with the EnKF technique using the DA method. Validation results showed that the proposed SVM-EnKF model can improve the prediction results of soil moisture in different layers, from the surface to the root zone. 展开更多
关键词 data assimilation support vector machines ensemble Kalman filter soil moisture
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Data Selection Using Support Vector Regression
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作者 Michael B.RICHMAN Lance M.LESLIE +1 位作者 Theodore B.TRAFALIS Hicham MANSOURI 《Advances in Atmospheric Sciences》 SCIE CAS CSCD 2015年第3期277-286,共10页
Geophysical data sets are growing at an ever-increasing rate,requiring computationally efficient data selection (thinning) methods to preserve essential information.Satellites,such as WindSat,provide large data sets... Geophysical data sets are growing at an ever-increasing rate,requiring computationally efficient data selection (thinning) methods to preserve essential information.Satellites,such as WindSat,provide large data sets for assessing the accuracy and computational efficiency of data selection techniques.A new data thinning technique,based on support vector regression (SVR),is developed and tested.To manage large on-line satellite data streams,observations from WindSat are formed into subsets by Voronoi tessellation and then each is thinned by SVR (TSVR).Three experiments are performed.The first confirms the viability of TSVR for a relatively small sample,comparing it to several commonly used data thinning methods (random selection,averaging and Barnes filtering),producing a 10% thinning rate (90% data reduction),low mean absolute errors (MAE) and large correlations with the original data.A second experiment,using a larger dataset,shows TSVR retrievals with MAE < 1 m s-1 and correlations ≥ 0.98.TSVR was an order of magnitude faster than the commonly used thinning methods.A third experiment applies a two-stage pipeline to TSVR,to accommodate online data.The pipeline subsets reconstruct the wind field with the same accuracy as the second experiment,is an order of magnitude faster than the nonpipeline TSVR.Therefore,pipeline TSVR is two orders of magnitude faster than commonly used thinning methods that ingest the entire data set.This study demonstrates that TSVR pipeline thinning is an accurate and computationally efficient alternative to commonly used data selection techniques. 展开更多
关键词 data selection data thinning machine learning support vector regression Voronoi tessellation pipeline methods
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基于SVM和归一化熵模型的隐患文本分类与类型特征分析
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作者 乔剑锋 刘萱 +2 位作者 艾莉莎 张丽玮 王汀 《重庆大学学报》 北大核心 2026年第2期105-115,共11页
为了提高隐患信息数据组织和检索的效率,支持更复杂的信息处理任务,需要采用有效技术手段对数据进行自动分类和类型分析。支持向量机(support vector machine,SVM)可以对自由文本进行自动分类,但是算法的工作原理是在训练集中寻找最优... 为了提高隐患信息数据组织和检索的效率,支持更复杂的信息处理任务,需要采用有效技术手段对数据进行自动分类和类型分析。支持向量机(support vector machine,SVM)可以对自由文本进行自动分类,但是算法的工作原理是在训练集中寻找最优分类边界,不能发现类型典型特征。为了分析类型样本的共同特征,提出采用归一化熵模型寻找类型典型特征,改进当前词频-逆文档频率(term frequency-inverse document frequency,TF-IDF)类型特征识别方法。以政府某应急管理局的2 534条执法检查记录为例,采用SVM进行自动分类,准确率高达97%。同时通过归一化熵模型给出各类型的典型特征,为制定隐患排查专项整治策略提供决策支持。实验结果表明,采用SVM和归一化熵模型的组合技术可以高效解决文本分类和类型特征识别的综合问题。 展开更多
关键词 文本挖掘 数据挖掘 隐患排查 支持向量机
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顾及分布密度的矢量数据几何精度降低的评估算法
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作者 金琰 张黎明 +3 位作者 谢佳宁 南瑞刚 谭涛 王浩然 《地理与地理信息科学》 北大核心 2026年第1期17-24,共8页
高精度矢量数据的涉密性使数据共享过程中的安全问题日益突出,在保证数据可用性的前提下,如何对矢量数据实现可控的精度降低成为当前面临的关键挑战。针对现有研究难以兼顾可用性和可控性的问题,该文提出一种精度可控的几何精度降低算... 高精度矢量数据的涉密性使数据共享过程中的安全问题日益突出,在保证数据可用性的前提下,如何对矢量数据实现可控的精度降低成为当前面临的关键挑战。针对现有研究难以兼顾可用性和可控性的问题,该文提出一种精度可控的几何精度降低算法。首先,将原始数据从直角坐标转换为极坐标,采用光栏法选取控制点,使之与矢量数据的分布密度相一致;其次,基于Hermite多项式建立空间坐标的偏移模型,并输入选取的控制点,通过迭代训练出最优的偏移模型参数;最后,在极坐标中添加扰动后变换回直角坐标。实验结果表明:对于不同精度标准,该算法均能准确达到设定的目标降低精度,实现对精度降低的有效控制;精度降低后数据在拓扑关系保持度、图形形态相似度、空间方向一致度方面表现良好,可用性较高。该算法具有良好的可控性且安全可靠,可为空间数据安全应用提供有力保障。 展开更多
关键词 矢量数据 几何精度降低 极坐标 HERMITE多项式 精度可控 拓扑保持性 非线性变换
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纳秒脉冲下SF_(6)气体中闪络电压预测方法研究
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作者 孙楚昱 陈伟 +1 位作者 王海洋 汲胜昌 《强激光与粒子束》 北大核心 2026年第2期97-108,共12页
纳秒脉冲下SF_(6)中的沿面闪络涉及的物理过程复杂,如何准确预测该环境下的绝缘介质沿面闪络电压是高压脉冲功率设备设计与绝缘可靠性评估的关键挑战。与传统工频或直流电压相比,纳秒脉冲极短的上升时间和高幅值导致空间电荷效应显著、... 纳秒脉冲下SF_(6)中的沿面闪络涉及的物理过程复杂,如何准确预测该环境下的绝缘介质沿面闪络电压是高压脉冲功率设备设计与绝缘可靠性评估的关键挑战。与传统工频或直流电压相比,纳秒脉冲极短的上升时间和高幅值导致空间电荷效应显著、放电发展机制迥异,使得基于经典理论的预测模型面临严峻挑战。近年来,随着计算机算力的飞速提升和人工智能算法的突破性进展,基于数据驱动的机器学习方法在解决复杂非线性绝缘问题中展现出了巨大潜力。针对纳秒脉冲下这一特定难题,选取了支持向量机、多层感知机、随机森林和极端梯度提升树等四种算法对15~500 mm多尺度距离范围内不同实验条件下的闪络电压数据进行了训练和预测,其预测结果的ROC曲线下面积(AUC)值均在0.9以上,表现最优的是支持向量机算法。同时,为了验证预测模型的准确性,选取表现较为优异的支持向量机模型对另选取的100 mm距离数据进行了预测,AUC值达到0.99,这表明预测准确率高,可以认为模型具备较强的泛化性,从而验证了不同实验条件下基于数据驱动的SF6中闪络电压预测方法的可行性。 展开更多
关键词 沿面闪络 支持向量机 电压预测 人工智能 数据驱动
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基于垂向密度的LiDAR点云建筑物轮廓提取
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作者 蔡训峰 徐卓揆 +1 位作者 袁齐 朱彬 《工程勘察》 2026年第2期70-75,共6页
从点云数据中提取建筑物轮廓是当前的一个研究热点,而现有算法大都需要先选取合适的种子点或不能很好地适应密度不均匀的点云数据。本文提出一种基于垂向密度快速提取点云数据建筑物矢量轮廓的方法,首先采用高程和面积阈值对滤波得到的... 从点云数据中提取建筑物轮廓是当前的一个研究热点,而现有算法大都需要先选取合适的种子点或不能很好地适应密度不均匀的点云数据。本文提出一种基于垂向密度快速提取点云数据建筑物矢量轮廓的方法,首先采用高程和面积阈值对滤波得到的非地面点分离出建筑物点云,然后基于垂向密度提取建筑物初始多段线,最后对初始多段线进行加权拟合提取建筑物规则化轮廓线。结果表明,基于垂向密度的点云建筑物轮廓提取方法无需其他辅助数据,且能较好地适应复杂地形,通过实验获取数据与实测数据对比分析可知,建筑物轮廓提取的准确度为90.98%、面积提取的准确度为94.32%、周长提取准确度为95.72%、位置精度均分误差为0.036 m,提取效果较好,可为点云数据的建筑物轮廓提取提供一种新方法。 展开更多
关键词 LiDAR点云数据 矢量化 建筑物轮廓 垂向密度 多段线加权规则化
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基于Arcgis Engine的GeoDatabase数据转换研究和实现
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作者 陈春香 江柳斌 《电脑知识与技术》 2008年第S2期197-198,共2页
为了实现GIS数据的共享,人们往往需要进行跨平台的数据转换。本文从GIS矢量数据内容入手,介绍了公司自主开发ForeStar地理信息系统平台的矢量数据以及GeoDatabase数据的特点,结合Arcgis Engine组件技术,采用Visual Basic6.0实现了ForeS... 为了实现GIS数据的共享,人们往往需要进行跨平台的数据转换。本文从GIS矢量数据内容入手,介绍了公司自主开发ForeStar地理信息系统平台的矢量数据以及GeoDatabase数据的特点,结合Arcgis Engine组件技术,采用Visual Basic6.0实现了ForeStar平台矢量数据向GeoDatabase数据的相互转换。 展开更多
关键词 ARCGIS ENGINE 数据转换 GIS矢量数据 ForeStar平台 GEOdataBASE
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基于移动车辆荷载作用下锚固点振动响应结合机器学习的斜拉索损伤识别研究
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作者 曾有艺 杜家锐 +2 位作者 张家滨 王金昊 樊继荣 《中外公路》 2026年第1期177-187,共11页
移动车辆荷载作用下采集的桥面振动响应数据,包含了很多桥梁的几何参数信息,能有效地对结构损伤进行识别。机器学习算法能够挖掘响应数据中的关键信息,捕捉其中线性关系。该文以韶州大桥为背景,建立斜拉桥有限元模型,将多种不同车辆参... 移动车辆荷载作用下采集的桥面振动响应数据,包含了很多桥梁的几何参数信息,能有效地对结构损伤进行识别。机器学习算法能够挖掘响应数据中的关键信息,捕捉其中线性关系。该文以韶州大桥为背景,建立斜拉桥有限元模型,将多种不同车辆参数的两轴货车荷载作用在不同斜拉索小损伤工况下的斜拉桥模型上,模拟计算移动荷载作用下斜拉桥模型的振动响应。采用主成分分析(PCA)技术对加速度数据降维压缩,并结合贝叶斯优化后的最小二乘法支持向量机模型(BO-LSSVM),开展不同荷载组合下斜拉索的损伤定位与定量分析。针对多根拉索损伤预测不准确的情况,提出了将定位标签整合到损伤数据中的方法。结果表明:基于大量的损伤响应数据,BO-LSSVM模型能寻找到最佳的超参数组合,有效分析复杂响应数据,利用移动车辆荷载实现拉索损伤程度的监测分析。利用PCA对加速度响应数据进行降维压缩,在保证预测精准度的同时,提高了机器学习的计算效率,节约了计算资源。且在多损伤数据特征数据中添加定位标签方法有效提高了损伤识别的准确性。该研究为实际工程中的损伤实时监测提供了模型参考与技术理论基础。 展开更多
关键词 斜拉桥 车桥耦合 振动响应 数据压缩 贝叶斯优化 最小二乘法支持向量机 损伤识别
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