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MMH-FE:AMulti-Precision and Multi-Sourced Heterogeneous Privacy-Preserving Neural Network Training Based on Functional Encryption
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作者 Hao Li Kuan Shao +2 位作者 Xin Wang Mufeng Wang Zhenyong Zhang 《Computers, Materials & Continua》 2025年第3期5387-5405,共19页
Due to the development of cloud computing and machine learning,users can upload their data to the cloud for machine learning model training.However,dishonest clouds may infer user data,resulting in user data leakage.P... Due to the development of cloud computing and machine learning,users can upload their data to the cloud for machine learning model training.However,dishonest clouds may infer user data,resulting in user data leakage.Previous schemes have achieved secure outsourced computing,but they suffer from low computational accuracy,difficult-to-handle heterogeneous distribution of data from multiple sources,and high computational cost,which result in extremely poor user experience and expensive cloud computing costs.To address the above problems,we propose amulti-precision,multi-sourced,andmulti-key outsourcing neural network training scheme.Firstly,we design a multi-precision functional encryption computation based on Euclidean division.Second,we design the outsourcing model training algorithm based on a multi-precision functional encryption with multi-sourced heterogeneity.Finally,we conduct experiments on three datasets.The results indicate that our framework achieves an accuracy improvement of 6%to 30%.Additionally,it offers a memory space optimization of 1.0×2^(24) times compared to the previous best approach. 展开更多
关键词 Functional encryption multi-sourced heterogeneous data privacy preservation neural networks
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Multi-source heterogeneous data access management framework and key technologies for electric power Internet of Things 被引量:1
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作者 Pengtian Guo Kai Xiao +1 位作者 Xiaohui Wang Daoxing Li 《Global Energy Interconnection》 EI CSCD 2024年第1期94-105,共12页
The power Internet of Things(IoT)is a significant trend in technology and a requirement for national strategic development.With the deepening digital transformation of the power grid,China’s power system has initiall... The power Internet of Things(IoT)is a significant trend in technology and a requirement for national strategic development.With the deepening digital transformation of the power grid,China’s power system has initially built a power IoT architecture comprising a perception,network,and platform application layer.However,owing to the structural complexity of the power system,the construction of the power IoT continues to face problems such as complex access management of massive heterogeneous equipment,diverse IoT protocol access methods,high concurrency of network communications,and weak data security protection.To address these issues,this study optimizes the existing architecture of the power IoT and designs an integrated management framework for the access of multi-source heterogeneous data in the power IoT,comprising cloud,pipe,edge,and terminal parts.It further reviews and analyzes the key technologies involved in the power IoT,such as the unified management of the physical model,high concurrent access,multi-protocol access,multi-source heterogeneous data storage management,and data security control,to provide a more flexible,efficient,secure,and easy-to-use solution for multi-source heterogeneous data access in the power IoT. 展开更多
关键词 Power Internet of Things Object model High concurrency access Zero trust mechanism multi-source heterogeneous data
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Enhanced permeability prediction in porous media using particle swarm optimization with multi-source integration
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作者 Zhiping Chen Jia Zhang +2 位作者 Daren Zhang Xiaolin Chang Wei Zhou 《Artificial Intelligence in Geosciences》 2024年第1期282-293,共12页
Accurately and efficiently predicting the permeability of porous media is essential for addressing a wide range of hydrogeological issues.However,the complexity of porous media often limits the effectiveness of indivi... Accurately and efficiently predicting the permeability of porous media is essential for addressing a wide range of hydrogeological issues.However,the complexity of porous media often limits the effectiveness of individual prediction methods.This study introduces a novel Particle Swarm Optimization-based Permeability Integrated Prediction model(PSO-PIP),which incorporates a particle swarm optimization algorithm enhanced with dy-namic clustering and adaptive parameter tuning(KGPSO).The model integrates multi-source data from the Lattice Boltzmann Method(LBM),Pore Network Modeling(PNM),and Finite Difference Method(FDM).By assigning optimal weight coefficients to the outputs of these methods,the model minimizes deviations from actual values and enhances permeability prediction performance.Initially,the computational performances of the LBM,PNM,and FDM are comparatively analyzed on datasets consisting of sphere packings and real rock samples.It is observed that these methods exhibit computational biases in certain permeability ranges.The PSOPIP model is proposed to combine the strengths of each computational approach and mitigate their limitations.The PSO-PIP model consistently produces predictions that are highly congruent with actual permeability values across all prediction intervals,significantly enhancing prediction accuracy.The outcomes of this study provide a new tool and perspective for the comprehensive,rapid,and accurate prediction of permeability in porous media. 展开更多
关键词 Porous media Particle swarm optimization algorithm multi-source data integration Permeability prediction
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Construction of Mediators for Heterogeneous Data Source Integration Systems
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作者 高明 宋瀚涛 《Journal of Beijing Institute of Technology》 EI CAS 2003年第1期33-36,共4页
To construct mediators for data integration systems that integrate structured and semi-structured data, and to facilitate the reformulation and decomposition of the query, the presented system uses the XML processing ... To construct mediators for data integration systems that integrate structured and semi-structured data, and to facilitate the reformulation and decomposition of the query, the presented system uses the XML processing language (XPL) for the mediator. With XPL, it is easy to construct mediators for data integration based on XML, and it can accelerate the work in the mediator. 展开更多
关键词 heterogeneous data sources data integration MEDIATOR data model VIEW
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Overview of global monthly surface temperature data in the past century and preliminary integration 被引量:2
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作者 XU Wen-Hui LI Qing-Xiang +1 位作者 YANG Su XU Yan 《Advances in Climate Change Research》 SCIE 2014年第3期111-117,共7页
This paper analyzes the status of existing resources through extensive research and international cooperation on the basis of four typical global monthly surface temperature datasets including the climate research dat... This paper analyzes the status of existing resources through extensive research and international cooperation on the basis of four typical global monthly surface temperature datasets including the climate research dataset of the University of East Anglia(CRUTEM3), the dataset of the U.S. National Climatic Data Center(GHCN-V3), the dataset of the U.S. National Aeronautics and Space Administration(GISSTMP), and the Berkeley Earth surface temperature dataset(Berkeley). China's first global monthly temperature dataset over land was developed by integrating the four aforementioned global temperature datasets and several regional datasets from major countries or regions. This dataset contains information from 9,519 stations worldwide of at least 20 years for monthly mean temperature, 7,073 for maximum temperature, and 6,587 for minimum temperature. Compared with CRUTEM3 and GHCN-V3, the station density is much higher particularly for South America, Africa,and Asia. Moreover, data from significantly more stations were available after the year 1990 which dramatically reduced the uncertainty of the estimated global temperature trend during 1990e2011. The integrated dataset can serve as a reliable data source for global climate change research. 展开更多
关键词 GLOBAL MONTHLY SURFACE temperature dataset integration of multi-source data Climate change
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Multi-Source Heterogeneous Data Fusion Analysis Platform for Thermal Power Plants
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作者 Jianqiu Wang Jianting Wen +1 位作者 Hui Gao Chenchen Kang 《Journal of Architectural Research and Development》 2025年第6期24-28,共5页
With the acceleration of intelligent transformation of energy system,the monitoring of equipment operation status and optimization of production process in thermal power plants face the challenge of multi-source heter... With the acceleration of intelligent transformation of energy system,the monitoring of equipment operation status and optimization of production process in thermal power plants face the challenge of multi-source heterogeneous data integration.In view of the heterogeneous characteristics of physical sensor data,including temperature,vibration and pressure that generated by boilers,steam turbines and other key equipment and real-time working condition data of SCADA system,this paper proposes a multi-source heterogeneous data fusion and analysis platform for thermal power plants based on edge computing and deep learning.By constructing a multi-level fusion architecture,the platform adopts dynamic weight allocation strategy and 5D digital twin model to realize the collaborative analysis of physical sensor data,simulation calculation results and expert knowledge.The data fusion module combines Kalman filter,wavelet transform and Bayesian estimation method to solve the problem of data time series alignment and dimension difference.Simulation results show that the data fusion accuracy can be improved to more than 98%,and the calculation delay can be controlled within 500 ms.The data analysis module integrates Dymola simulation model and AERMOD pollutant diffusion model,supports the cascade analysis of boiler combustion efficiency prediction and flue gas emission monitoring,system response time is less than 2 seconds,and data consistency verification accuracy reaches 99.5%. 展开更多
关键词 Thermal power plant multi-source heterogeneous data data fusion analysis platform Edge computing
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Joint Design of Clustering and In-cluster Data Route for Heterogeneous Wireless Sensor Networks 被引量:1
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作者 Liang Xue Ying Liu +2 位作者 Zhi-Qun Gu Zhi-Hua Li Xin-Ping Guan 《International Journal of Automation and computing》 EI CSCD 2017年第6期637-649,共13页
A heterogeneous wireless sensor network comprises a number of inexpensive energy constrained wireless sensor nodes which collect data from the sensing environment and transmit them toward the improved cluster head in ... A heterogeneous wireless sensor network comprises a number of inexpensive energy constrained wireless sensor nodes which collect data from the sensing environment and transmit them toward the improved cluster head in a coordinated way. Employing clustering techniques in such networks can achieve balanced energy consumption of member nodes and prolong the network lifetimes.In classical clustering techniques, clustering and in-cluster data routes are usually separated into independent operations. Although separate considerations of these two issues simplify the system design, it is often the non-optimal lifetime expectancy for wireless sensor networks. This paper proposes an integral framework that integrates these two correlated items in an interactive entirety. For that,we develop the clustering problems using nonlinear programming. Evolution process of clustering is provided in simulations. Results show that our joint-design proposal reaches the near optimal match between member nodes and cluster heads. 展开更多
关键词 heterogeneous wireless sensor networks clustering technique in-cluster data routes integral framework network lifetimes
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A Dynamic XML-NS View Based Approach for the Extensible Integration of Web Data Sources
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作者 WUWei LUZheng-ding LIRui-xuan WANGZhi-gang 《Wuhan University Journal of Natural Sciences》 EI CAS 2004年第5期647-651,共5页
We propose a three-step technique to achieve this purpose. First, we utilize a collection of XML namespaces organized into hierarchical structure as a medium for expressing data semantics. Second, we define the format... We propose a three-step technique to achieve this purpose. First, we utilize a collection of XML namespaces organized into hierarchical structure as a medium for expressing data semantics. Second, we define the format of resource descriptor for the information source discovery scheme so that we can dynamically register and/or deregister the Web data sources on the fly. Third, we employ an inverted-index mechanism to identify the subset of information sources that are relevant to a particular user query. We describe the design, architecture, and implementation of our approach—IWDS, and illustrate its use through case examples. Key words integration - heterogeneity - Web data source - XML namespace CLC number TP 311.13 Foundation item: Supported by the National Key Technologies R&D Program of China(2002BA103A04)Biography: WU Wei (1975-), male, Ph.D candidate, research direction: information integration, distribute computing 展开更多
关键词 integration heterogenEITY Web data source XML namespace
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Evaluating Urban Housing Contradictions Through Multisource Data Fusion:a Case Study of Spatiotemporal Mismatch Analysis in Shenzhen with the HCEWI Model
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作者 JIANG Aiyi CHEN Guanzhou CAO Jinzhou 《Journal of Geodesy and Geoinformation Science》 2025年第3期1-16,共16页
The rapid urbanization and structural imbalances in Chinese megacities have exacerbated the housing supplydemand mismatch,creating an urgent need for fine-scale diagnostic tools.This study addresses this critical gap ... The rapid urbanization and structural imbalances in Chinese megacities have exacerbated the housing supplydemand mismatch,creating an urgent need for fine-scale diagnostic tools.This study addresses this critical gap by developing the Housing Contradiction Evaluation Weighted Index(HCEWI)model,making three key contributions to high-resolution housing monitoring.First,we establish a tripartite theoretical framework integrating dynamic population pressure(PPI),housing supply potential(HSI),and functional diversity(HHI).The PPI innovatively combines mobile signaling data with principal component analysis to capture real-time commuting patterns,while the HSI introduces a novel dual-criteria system based on Local Climate Zones(LCZ),weighted by building density and residential function ratio.Second,we develop a spatiotemporal coupling architecture featuring an entropy-weighted dynamic integration mechanism with self-correcting modules,demonstrating robust performance against data noise.Third,our 25-month longitudinal analysis in Shenzhen reveals significant findings,including persistent bipolar clustering patterns,contrasting volatility between peripheral and core areas,and seasonal policy responsiveness.Methodologically,we advance urban diagnostics through 500-meter grid monthly monitoring and process-oriented temporal operators that reveal“tentacle-like”spatial restructuring along transit corridors.Our findings provide a replicable framework for precision housing governance and demonstrate the transformative potential of mobile signaling data in implementing China’s“city-specific policy”approach.We further propose targeted intervention strategies,including balance regulation for high-contradiction zones,Transit-Oriented Development(TOD)activation for low-contradiction clusters,and dynamic land conversion mechanisms for transitional areas. 展开更多
关键词 index terms-housing contradiction assessment multi-source data fusion spatiotemporal heterogeneity job-housing spatial mismatch high-resolution urban diagnostics
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Optimizing Query Results Integration Process Using an Extended Fuzzy C-Means Algorithm
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作者 Naoual Mouhni Abderrafiaa Elkalay Mohamed Chakraoui 《Journal of Software Engineering and Applications》 2014年第5期354-359,共6页
Cleaning duplicate data is a major problem that persists even though many works have been done to solve it, due to the exponential growth of data amount treated and the necessity to use scalable and speed algorithms. ... Cleaning duplicate data is a major problem that persists even though many works have been done to solve it, due to the exponential growth of data amount treated and the necessity to use scalable and speed algorithms. This problem depends on the type and quality of data, and differs according to the volume of data set manipulated. In this paper we are going to introduce a novel framework based on extended fuzzy C-means algorithm by using topic ontology. This work aims to improve the OLAP querying process over heterogeneous data warehouses that contain big data sets, by improving query results integration, eliminating redundancies by using the extended classification algorithm, and measuring the loss of information. 展开更多
关键词 Clustering Classification and Association RULES dataBASE integration data WAREHOUSE and REPOSITORY heterogeneous dataBASES QUERY Processing
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机场智能跑道系统的多源数据集成与应用
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作者 凌建明 侯天新 +2 位作者 刘诗福 陶泽峰 李沛霖 《同济大学学报(自然科学版)》 北大核心 2025年第7期1047-1054,共8页
在现有智能跑道内涵、架构基础上,针对智能跑道数据流转难题,系统分析了智能跑道海量、多源、异构、异频的数据特征。基于此,提出了面向智能跑道的多层次数据集成原理、多平台物理构成和全过程数据流架构。结合数据高效可靠利用、分类... 在现有智能跑道内涵、架构基础上,针对智能跑道数据流转难题,系统分析了智能跑道海量、多源、异构、异频的数据特征。基于此,提出了面向智能跑道的多层次数据集成原理、多平台物理构成和全过程数据流架构。结合数据高效可靠利用、分类长效保存需求,阐述了智能跑道数据预处理、标准化处理方法,总结了智能跑道数据存储特点,并建立了对应的多级存储架构与关联存储模式。日喀则定日机场落地应用表明,在不丢失有效信息的前提下减少无效信息超过95%,完成所有数据的统一管理、多源共享,推动智能跑道性能实时评价、风险超前预警、智能维护决策等优势功能的实现。 展开更多
关键词 机场工程 智能跑道 数据集成 多源异构 数据处理 数据存储
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信创环境下数据库迁移关键技术的应用与实践
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作者 姜新超 王彪 宋双羊 《信息与电脑》 2025年第17期36-38,共3页
数据库迁移在信创环境下是提升信息技术自主可控能力的重要举措。面对国内外数据库差异带来的技术挑战,文章对异构数据模型转换、数据完整性校验及跨平台传输优化等关键技术进行探讨,对迁移前后的系统兼容性评估、功能验证与性能优化策... 数据库迁移在信创环境下是提升信息技术自主可控能力的重要举措。面对国内外数据库差异带来的技术挑战,文章对异构数据模型转换、数据完整性校验及跨平台传输优化等关键技术进行探讨,对迁移前后的系统兼容性评估、功能验证与性能优化策略进行分析。实践表明,保障迁移顺利进行的关键是科学的迁移方案与有效的安全措施,这为国产数据库发展提供了有力的技术支持与实践经验。 展开更多
关键词 信创环境 数据库迁移 异构数据模型转换 数据完整性校验 跨平台传输优化
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构建水利一体化政务服务平台探索
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作者 李冬杰 杨柳 +1 位作者 王爱莉 郑策 《水利信息化》 2025年第4期81-86,共6页
为多措并举纵深推进“放管服”改革,全面提升水利一体化政务服务能力,在分析水利部政务服务相关系统(平台)建设现状及存在问题的基础上,以新一代信息技术为支撑,提出水利一体化政务服务平台总体框架和整合建设思路与技术实现方式,对水... 为多措并举纵深推进“放管服”改革,全面提升水利一体化政务服务能力,在分析水利部政务服务相关系统(平台)建设现状及存在问题的基础上,以新一代信息技术为支撑,提出水利一体化政务服务平台总体框架和整合建设思路与技术实现方式,对水利一体化服务门户构建、应用整合、数据融合、应用支撑能力整合等建设内容进行探索。在平台架构设计上,重点引入微服务框架,通过模块化设计与服务解耦,提升平台的灵活性与可扩展性。同时,针对政务服务数据融合问题,提出多源数据融合策略,并结合AI智能分析技术,提出在水利政务服务中的应用框架。水利一体化政务服务平台的构建将解决制约水利政务服务“一网通办”的难点问题,进一步提升水利政务服务效能,研究成果可为下阶段水利一体化政务服务平台构建提供技术参考。 展开更多
关键词 水利一体化政务服务 服务平台 微服务框架 多源异构数据融合 AI智能分析技术
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基于决策粗糙集的多源异构电网数据整合方法 被引量:5
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作者 郭良 郑晓斌 +2 位作者 段春明 王卓 鲁兵 《兵工自动化》 北大核心 2025年第1期48-52,共5页
为解决多源异构电网数据整合耗时较长的问题,提出应用决策粗糙集的数据整合模型。通过纵向融合、横向融合2个环节,完成多源异构电网数据的融合处理,再应用并行化正向最大匹配去冗算法,删除融合数据中存在的重复冗余信息;依托决策粗糙集... 为解决多源异构电网数据整合耗时较长的问题,提出应用决策粗糙集的数据整合模型。通过纵向融合、横向融合2个环节,完成多源异构电网数据的融合处理,再应用并行化正向最大匹配去冗算法,删除融合数据中存在的重复冗余信息;依托决策粗糙集对电网数据进行属性约简,去除具有干扰作用的噪声条件属性,再从约简决策表内提取模糊分类规则,实现电网数据的分类整合管理;创建基于数据关联度的整合数据修复方案,完成数据整合模型的设计。实验结果表明:应用所提模型对43700条多源异构电网数据进行整合处理,所需的数据整合时间为5.9 s,符合实时性要求。 展开更多
关键词 决策粗糙集 异构数据 电网 数据整合 正向最大匹配原则 关联度
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跨系统的流动性多源异构数据整合算法仿真 被引量:1
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作者 陈亚颐 尹权 +1 位作者 再开日亚·安尼娃尔 张乐 《计算机仿真》 2025年第1期410-414,共5页
多源异构数据的存在,使数据在不同系统之间的流动和共享变得复杂而困难,导致数据资源无法被充分利用,形成了数据孤岛。为了提高数据质量和利用效率,提出跨系统流动性的多源异构数据整合算法研究。利用时序关联和密度聚类算法对收集到的... 多源异构数据的存在,使数据在不同系统之间的流动和共享变得复杂而困难,导致数据资源无法被充分利用,形成了数据孤岛。为了提高数据质量和利用效率,提出跨系统流动性的多源异构数据整合算法研究。利用时序关联和密度聚类算法对收集到的跨系统流动性多源异构数据实施数据清洗,提高数据质量;采用堆叠自编码器深度神经网络(Stacked Auto-Encoder, SAE)从跨系统数据源中抽取出描述数据跨系统流动性的关键特征点;建立基于循环神经网络的数据整合模型,将这些关键特征点作为输入,并通过该模型不断优化,实现跨系统的多源异构数据高效整合。实验结果表明,所提方法得到的数据具有较高的质量,且相似度控制在0.895~0.960之间,整合效果最为可靠。 展开更多
关键词 跨系统流动性 多源异构数据整合 数据清洗 特征抽取 循环神经网络
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基于异构图注意力网络的实体对齐
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作者 孙琛琛 金钰媛 +2 位作者 申德荣 聂铁铮 寇月 《软件学报》 北大核心 2025年第11期5197-5212,共16页
实体对齐(entity alignment, EA)旨在寻找不同知识图谱(knowledge graph, KG)中等价实体.目前,基于嵌入的EA方法存在以下局限性.首先, KG中的异构结构没有完全建模.其次,文本信息的使用受限于词嵌入.第三,对齐推理算法缺乏探索.针对上... 实体对齐(entity alignment, EA)旨在寻找不同知识图谱(knowledge graph, KG)中等价实体.目前,基于嵌入的EA方法存在以下局限性.首先, KG中的异构结构没有完全建模.其次,文本信息的使用受限于词嵌入.第三,对齐推理算法缺乏探索.针对上述限制,提出基于异构图注意力网络的实体对齐方法 (heterogeneous graph attention network for entity alignment, HGAT-EA). HGAT-EA包括两个通道,一个用于学习结构嵌入,另一个用于学习字符级语义嵌入.第1个通道采用异构图注意力网络(heterogeneous graph attention network, HGAT). HGAT充分利用了异构结构和关系三元组来学习实体嵌入.第2个通道是利用字符级字面量来学习字符级语义嵌入.HGAT-EA通过多通道考虑多个视图,并通过HGAT充分利用异构结构. HGAT-EA考虑了3种不同的对齐推理算法.实验结果证明了该方法的有效性,进一步结合实验结果对HGAT-EA的不同组件进行详细分析,并给出相应的结论. 展开更多
关键词 实体对齐 知识图谱融合 异构图注意力网络 表示学习 数据集成
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图Transformer模型在多组学数据整合分析中的应用
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作者 师瑶 段贸腾 +1 位作者 刘丙强 唐怀宾 《数学建模及其应用》 2025年第2期1-8,共8页
近年来,生物学研究中对于复杂分子机制和细胞异质性的解析需求不断增加,单细胞多组学技术应运而生.通过同时量化细胞的多个组学模态,多组学技术为全面揭示细胞内复杂的分子机制提供了全新的视角.然而,由于不同组学数据之间的异质性及噪... 近年来,生物学研究中对于复杂分子机制和细胞异质性的解析需求不断增加,单细胞多组学技术应运而生.通过同时量化细胞的多个组学模态,多组学技术为全面揭示细胞内复杂的分子机制提供了全新的视角.然而,由于不同组学数据之间的异质性及噪声干扰,多组学数据整合分析仍面临巨大挑战.作为一种新兴的方法,图Transformer在多组学数据整合任务中展现出显著优势,尤其在对复杂细胞网络和基因调控关系的建模上具有独特潜力.本文系统地介绍了图Transformer在实现多组学数据整合任务中的数学原理,并结合DeepMAPS与MarsGT两个典型实例,展示了基于异质图Transformer框架的分析方法在单细胞多组学数据分析中的应用前景,为跨模态数据整合和复杂生物网络解析提供了实践参考. 展开更多
关键词 单细胞 多组学 数据整合 异质图 图Transformer
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基于图的异构数据集成方法研究 被引量:1
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作者 黄跃珍 杨芬 +2 位作者 田丰 张承业 李雨婵 《大数据》 2025年第1期21-35,共15页
企业各部门对数据施行分散管理,烟囱式的系统建设使数据散落在异构数据库中,异构数据给当前数据集成工作带来了系列挑战。为解决企业异构系统数据汇聚融合的问题,提出一种基于图的端到端的数据集成框架。首先,根据关系型数据模型的主外... 企业各部门对数据施行分散管理,烟囱式的系统建设使数据散落在异构数据库中,异构数据给当前数据集成工作带来了系列挑战。为解决企业异构系统数据汇聚融合的问题,提出一种基于图的端到端的数据集成框架。首先,根据关系型数据模型的主外键关系将表和字段的实体关系构建成网络图,将表名和字段名称分别看作图中不同类型的实体。然后,将构建的图输入图神经网络,经过图卷积得到图中各节点的向量表征,基于节点向量可计算任意所需匹配的两个图的节点映射关系。完成图中表和字段的对齐后,再将不同字段值标准化,即将每个单元格的值映射为标准值。最后,将以上结果工程化为数据库可执行的查询语句,从而实现异构数据融合。在企业内部的真实数据上进行验证,实验结果表明,文中所提框架能提高数据集成的开发效率,且该模型不受业务领域限制,具有较强的移植性。 展开更多
关键词 数据集成 数据融合 异构数据 模式匹配 实体对齐 图神经网络
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多源异构装备试验数据集成平台设计
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作者 丁海斌 崔隽 《指挥信息系统与技术》 2025年第1期69-76,共8页
针对装备试验数据资源专业性强、集中治理难度大且跨领域融合分析能力不足等问题,设计研究了一套装备试验数据集成平台,并采用了异构数据统一建模、统一汇聚及基于分布式计算的数据稽核等关键技术。平台实现了试验数据面向专业领域、重... 针对装备试验数据资源专业性强、集中治理难度大且跨领域融合分析能力不足等问题,设计研究了一套装备试验数据集成平台,并采用了异构数据统一建模、统一汇聚及基于分布式计算的数据稽核等关键技术。平台实现了试验数据面向专业领域、重点装备等数据分析需求的按需汇聚,并提升了装备试验数据联通和融合程度,加速试验数据由资源向资产演变的进程。 展开更多
关键词 装备试验 数据集成 多源异构
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面向脱贫地区农村经济发展的异质性金融需求分析
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作者 冯政 廖东声 《西南大学学报(自然科学版)》 北大核心 2025年第6期126-134,共9页
为持续巩固拓展脱贫攻坚成果,推进乡村全面振兴,对脱贫地区金融异质性需求进行分析,探讨农村金融资源配置效率对农村经济发展的影响。以Malmquist指数对农村金融资源配置效率进行评价,通过分析农村金融配置效率对三产融合推进的影响,探... 为持续巩固拓展脱贫攻坚成果,推进乡村全面振兴,对脱贫地区金融异质性需求进行分析,探讨农村金融资源配置效率对农村经济发展的影响。以Malmquist指数对农村金融资源配置效率进行评价,通过分析农村金融配置效率对三产融合推进的影响,探讨农村金融需求对地区经济发展的影响。结果显示:东部地区农村金融资源配置效率低于1.053时,农村金融需求对农村经济发展的影响较低;金融资源配置效率高于1.053时,农村金融需求对农村经济发展的影响有所提高。中部地区农村金融资源配置效率低于0.939时,农村金融需求对农村经济发展的影响较为明显。增加农村金融需求可进一步推动农村金融发展,巩固拓展脱贫攻坚成果。 展开更多
关键词 乡村振兴 三产融合 异质性 数据包络分析
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