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Belief exponential divergence for D-S evidence theory and its application in multi-source information fusion 被引量:4
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作者 DUAN Xiaobo FAN Qiucen +1 位作者 BI Wenhao ZHANG An 《Journal of Systems Engineering and Electronics》 CSCD 2024年第6期1454-1468,共15页
Dempster-Shafer evidence theory is broadly employed in the research of multi-source information fusion.Nevertheless,when fusing highly conflicting evidence it may pro-duce counterintuitive outcomes.To address this iss... Dempster-Shafer evidence theory is broadly employed in the research of multi-source information fusion.Nevertheless,when fusing highly conflicting evidence it may pro-duce counterintuitive outcomes.To address this issue,a fusion approach based on a newly defined belief exponential diver-gence and Deng entropy is proposed.First,a belief exponential divergence is proposed as the conflict measurement between evidences.Then,the credibility of each evidence is calculated.Afterwards,the Deng entropy is used to calculate information volume to determine the uncertainty of evidence.Then,the weight of evidence is calculated by integrating the credibility and uncertainty of each evidence.Ultimately,initial evidences are amended and fused using Dempster’s rule of combination.The effectiveness of this approach in addressing the fusion of three typical conflict paradoxes is demonstrated by arithmetic exam-ples.Additionally,the proposed approach is applied to aerial tar-get recognition and iris dataset-based classification to validate its efficacy.Results indicate that the proposed approach can enhance the accuracy of target recognition and effectively address the issue of fusing conflicting evidences. 展开更多
关键词 Dempster-Shafer(D-S)evidence theory multi-source information fusion conflict measurement belief expo-nential divergence(BED) target recognition
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A multi-source information fusion layer counting method for penetration fuze based on TCN-LSTM 被引量:2
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作者 Yili Wang Changsheng Li Xiaofeng Wang 《Defence Technology(防务技术)》 SCIE EI CAS CSCD 2024年第3期463-474,共12页
When employing penetration ammunition to strike multi-story buildings,the detection methods using acceleration sensors suffer from signal aliasing,while magnetic detection methods are susceptible to interference from ... When employing penetration ammunition to strike multi-story buildings,the detection methods using acceleration sensors suffer from signal aliasing,while magnetic detection methods are susceptible to interference from ferromagnetic materials,thereby posing challenges in accurately determining the number of layers.To address this issue,this research proposes a layer counting method for penetration fuze that incorporates multi-source information fusion,utilizing both the temporal convolutional network(TCN)and the long short-term memory(LSTM)recurrent network.By leveraging the strengths of these two network structures,the method extracts temporal and high-dimensional features from the multi-source physical field during the penetration process,establishing a relationship between the multi-source physical field and the distance between the fuze and the target plate.A simulation model is developed to simulate the overload and magnetic field of a projectile penetrating multiple layers of target plates,capturing the multi-source physical field signals and their patterns during the penetration process.The analysis reveals that the proposed multi-source fusion layer counting method reduces errors by 60% and 50% compared to single overload layer counting and single magnetic anomaly signal layer counting,respectively.The model's predictive performance is evaluated under various operating conditions,including different ratios of added noise to random sample positions,penetration speeds,and spacing between target plates.The maximum errors in fuze penetration time predicted by the three modes are 0.08 ms,0.12 ms,and 0.16 ms,respectively,confirming the robustness of the proposed model.Moreover,the model's predictions indicate that the fitting degree for large interlayer spacings is superior to that for small interlayer spacings due to the influence of stress waves. 展开更多
关键词 Penetration fuze Temporal convolutional network(TCN) Long short-term memory(LSTM) Layer counting multi-source fusion
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Multi-sources information fusion algorithm in airborne detection systems 被引量:19
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作者 Yang Yan Jing Zhanrong Gao Tan Wang Huilong 《Journal of Systems Engineering and Electronics》 SCIE EI CSCD 2007年第1期171-176,共6页
To aim at the multimode character of the data from the airplane detecting system, the paper combines Dempster- Shafer evidence theory and subjective Bayesian algorithm and makes to propose a mixed structure multimode ... To aim at the multimode character of the data from the airplane detecting system, the paper combines Dempster- Shafer evidence theory and subjective Bayesian algorithm and makes to propose a mixed structure multimode data fusion algorithm. The algorithm adopts a prorated algorithm relate to the incertitude evaluation to convert the probability evaluation into the precognition probability in an identity frame, and ensures the adaptability of different data from different source to the mixed system. To guarantee real time fusion, a combination of time domain fusion and space domain fusion is established, this not only assure the fusion of data chain in different time of the same sensor, but also the data fusion from different sensors distributed in different platforms and the data fusion among different modes. The feasibility and practicability are approved through computer simulation. 展开更多
关键词 information fusion Dempster-Shafer evidence theory Subjective Bayesian algorithm Airplane detecting system
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Three-dimensional finite-time optimal cooperative guidance with integrated information fusion observer 被引量:1
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作者 Yiao Zhan Linwei Wang Di Zhou 《Defence Technology(防务技术)》 2025年第4期12-28,共17页
Intercepting high-maneuverability hypersonic targets in near-space environments poses significant challenges due to their extreme speeds and evasive capabilities.To address these challenges,this study presents an inte... Intercepting high-maneuverability hypersonic targets in near-space environments poses significant challenges due to their extreme speeds and evasive capabilities.To address these challenges,this study presents an integrated approach that combines a Three-Dimensional Finite-Time Optimal Cooperative Guidance Law(FTOC)with an Information Fusion Anti-saturation Predefined-time Observer(IFAPO).The proposed FTOC guidance law employs a nonlinear,non-quadratic finite-time optimal control strategy designed for rapid convergence within the limited timeframes of near-space interceptions,avoiding the need for remaining flight time estimation or linear decoupling inherent in traditional methods.To complement the guidance strategy,the IFAPO leverages multi-source information fusion theory and incorporates anti-saturation mechanisms to enhance target maneuver estimation.This method ensures accurate and real-time prediction of target acceleration while maintaining predefined convergence performance,even under complex interception conditions.By integrating the FTOC guidance law and IFAPO,the approach optimizes cooperative missile positioning,improves interception success rates,and minimizes fuel consumption,addressing practical constraints in military applications.Simulation results and comparative analyses confirm the effectiveness of the integrated approach,demonstrating its capability to achieve cooperative interception of highly maneuvering targets with enhanced efficiency and reduced economic costs,aligning with realistic combat scenarios. 展开更多
关键词 Anti-saturation predefined-time observer Nonlinear finite-time optimal control Three-dimensional guidance information fusion
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Bayesian-based information extraction and aggregation approach for multilevel systems with multi-source data 被引量:4
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作者 Lechang Yang Jianguo Zhang +1 位作者 Yanling Guo Qian Wang 《Journal of Systems Engineering and Electronics》 SCIE EI CSCD 2017年第2期385-400,共16页
The ever-increasing complexity of industry facilities has made the reliability analysis and assessment an imperative yet tough work. Motivated by practical engineering requirement, this paper develops a Bayesian-based... The ever-increasing complexity of industry facilities has made the reliability analysis and assessment an imperative yet tough work. Motivated by practical engineering requirement, this paper develops a Bayesian-based information extraction and aggregation (BIEA) approach for system level reliability estimation of a complex system. It takes both subjective judgments and objective field outputs into consideration. Novel features of this approach is a unique information content based aggregation process, which allows a flexible application of this framework in separated modules on account for purpose. The coherency of which is guaranteed by the objective information content calculation. This work goes beyond the alternatives that deal with solely attributed data under ideal information circumstance, and investigates a more generic tool for real engineering application. Limitations embedded in traditional statistical modeling methods have been eliminated in a nature manner by information transition and integration. In addition, a double axis driving mechanism (DADM) for erecting the antenna of a satellite is demonstrated as case study for benefit illustration and effectiveness verification. © 2017 Beijing Institute of Aerospace Information. 展开更多
关键词 Artificial intelligence Data fusion information analysis information retrieval RELIABILITY Reliability analysis
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Hierarchical hybrid testability modeling and evaluation method based on information fusion 被引量:4
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作者 Xishan Zhang Kaoli Huang +1 位作者 Pengcheng Yan Guangyao Lian 《Journal of Systems Engineering and Electronics》 SCIE EI CSCD 2015年第3期523-532,共10页
In order to meet the demand of testability analysis and evaluation for complex equipment under a small sample test in the equipment life cycle, the hierarchical hybrid testability model- ing and evaluation method (HH... In order to meet the demand of testability analysis and evaluation for complex equipment under a small sample test in the equipment life cycle, the hierarchical hybrid testability model- ing and evaluation method (HHTME), which combines the testabi- lity structure model (TSM) with the testability Bayesian networks model (TBNM), is presented. Firstly, the testability network topo- logy of complex equipment is built by using the hierarchical hybrid testability modeling method. Secondly, the prior conditional prob- ability distribution between network nodes is determined through expert experience. Then the Bayesian method is used to update the conditional probability distribution, according to history test information, virtual simulation information and similar product in- formation. Finally, the learned hierarchical hybrid testability model (HHTM) is used to estimate the testability of equipment. Compared with the results of other modeling methods, the relative deviation of the HHTM is only 0.52%, and the evaluation result is the most accu rate. 展开更多
关键词 small sample complex equipment hierarchical hybrid information fusion testability modeling and evaluation.
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Fault tolerant navigation method for satellite based on information fusion and unscented Kalman filter 被引量:3
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作者 Dan Li Jianye Liu +1 位作者 Li Qiao Zhi Xiong 《Journal of Systems Engineering and Electronics》 SCIE EI CSCD 2010年第4期682-687,共6页
An effective autonomous navigation system for the integration of star sensor,infrared horizon sensor,magnetometer,radar altimeter and ultraviolet sensor is developed.The requirements of the integrated navigation syste... An effective autonomous navigation system for the integration of star sensor,infrared horizon sensor,magnetometer,radar altimeter and ultraviolet sensor is developed.The requirements of the integrated navigation system manager make optimum use of the various navigation sensors and allow rapid fault detection,isolation and recovery.The normal full fusion feedback method of federated unscented Kalman filter(UKF) cannot meet the needs of it.So a no-reset feedback federated Kalman filter architecture is developed and used in the autonomous navigation system.The minimal skew sigma points are chosen to improve the calculation speed.Simulation results are presented to demonstrate the advantages of the algorithm.These advantages include improved failure detection and correction,improved computational efficiency,and reliability.Additionally,its' accuracy is higher than that of the full fusion feedback method. 展开更多
关键词 autonomous navigation information fusion unscented Kalman filter(UKF) fault detection.
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Uncertain information fusion with robust adaptive neural networks-fuzzy reasoning 被引量:2
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作者 Zhang Yinan Sun Qingwei +2 位作者 Quan He Jin Yonggao Quan Taifan 《Journal of Systems Engineering and Electronics》 SCIE EI CSCD 2006年第3期495-501,共7页
In practical multi-sensor information fusion systems, there exists uncertainty about the network structure, active state of sensors, and information itself (including fuzziness, randomness, incompleteness as well as ... In practical multi-sensor information fusion systems, there exists uncertainty about the network structure, active state of sensors, and information itself (including fuzziness, randomness, incompleteness as well as roughness, etc). Hence it requires investigating the problem of uncertain information fusion. Robust learning algorithm which adapts to complex environment and the fuzzy inference algorithm which disposes fuzzy information are explored to solve the problem. Based on the fusion technology of neural networks and fuzzy inference algorithm, a multi-sensor uncertain information fusion system is modeled. Also RANFIS learning algorithm and fusing weight synthesized inference algorithm are developed from the ANFIS algorithm according to the concept of robust neural networks. This fusion system mainly consists of RANFIS confidence estimator, fusing weight synthesized inference knowledge base and weighted fusion section. The simulation result demonstrates that the proposed fusion model and algorithm have the capability of uncertain information fusion, thus is obviously advantageous compared with the conventional Kalman weighted fusion algorithm. 展开更多
关键词 uncertain information information fusion neural networks fuzzy inference robust estimate.
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Review on uncertainty analysis and information fusion diagnosis of aircraft control system 被引量:2
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作者 ZHOU Keyi LU Ningyun +1 位作者 JIANG Bin MENG Xianfeng 《Journal of Systems Engineering and Electronics》 SCIE CSCD 2024年第5期1245-1263,共19页
In the aircraft control system,sensor networks are used to sample the attitude and environmental data.As a result of the external and internal factors(e.g.,environmental and task complexity,inaccurate sensing and comp... In the aircraft control system,sensor networks are used to sample the attitude and environmental data.As a result of the external and internal factors(e.g.,environmental and task complexity,inaccurate sensing and complex structure),the aircraft control system contains several uncertainties,such as imprecision,incompleteness,redundancy and randomness.The information fusion technology is usually used to solve the uncertainty issue,thus improving the sampled data reliability,which can further effectively increase the performance of the fault diagnosis decision-making in the aircraft control system.In this work,we first analyze the uncertainties in the aircraft control system,and also compare different uncertainty quantitative methods.Since the information fusion can eliminate the effects of the uncertainties,it is widely used in the fault diagnosis.Thus,this paper summarizes the recent work in this aera.Furthermore,we analyze the application of information fusion methods in the fault diagnosis of the aircraft control system.Finally,this work identifies existing problems in the use of information fusion for diagnosis and outlines future trends. 展开更多
关键词 aircraft control system sensor networks information fusion fault diagnosis UNCERTAINTY
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Self-tuning Information Fusion Kalman Predictor Weighted by Diagonal Matrices and Its Convergence Analysis 被引量:14
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作者 DENG Zi-Li LI Chun-Bo 《自动化学报》 EI CSCD 北大核心 2007年第2期156-163,共8页
为有未知噪音统计的 multisensor 系统,使用现代时间系列分析方法,基于革新建模的动人的一般水准(麻省)的联机鉴定,并且基于为关联功能的矩阵方程的解决方案,噪音变化的评估者被获得,并且在线性最小的变化下面由斜矩阵加权的最佳... 为有未知噪音统计的 multisensor 系统,使用现代时间系列分析方法,基于革新建模的动人的一般水准(麻省)的联机鉴定,并且基于为关联功能的矩阵方程的解决方案,噪音变化的评估者被获得,并且在线性最小的变化下面由斜矩阵加权的最佳的信息熔化标准,一个自我调节的信息熔化 Kalman 预言者被介绍,它认识到自我调节的 dec 基于动态错误系统,一个新集中分析方法为自我调节的 fuser 被介绍。在一条认识的集中的一个新概念被介绍,它是比有概率一的集中弱的。如果 MA 革新模型的参数评价是一致的,那么,自我调节的熔化 Kalman 预言者将在一条认识收敛到最佳的熔化 Kalman 预言者,这严格地被证明,或与概率一,以便它有 asymptotic optimality。它能减少计算负担,并且对实时应用合适。为追踪系统的一个目标的一个模拟例子显示出它的有效性。 展开更多
关键词 人工智能 信息融合 集中分析 控制理论
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Fusion of multiagent preference orderings with information on agent's importance being incomplete certain
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作者 Wang Jianqiang 《Journal of Systems Engineering and Electronics》 SCIE EI CSCD 2007年第4期801-805,共5页
The problem of fusing multiagent preference orderings, with information on agent's importance being incomplete certain with respect to a set of possible courses of action, is described. The approach is developed for ... The problem of fusing multiagent preference orderings, with information on agent's importance being incomplete certain with respect to a set of possible courses of action, is described. The approach is developed for dealing with the fusion problem described in the following sections and requires that each agent provides a preference ordering over the different alternatives completely independent of the other agents, and the information on agent's importance is incomplete certain. In this approach, the ternary comparison matrix of the alternatives is constructed, the eigenvector associated with the maximum eigenvalue of the ternary comparison matrix is attained so as to normalize priority vector of the alternatives. The interval number of the alternatives is then obtained by solving two sorts of linear programming problems. By comparing the interval numbers of the alternatives, the ranking of alternatives can be generated. Finally, some examples are given to show the feasibility and effectiveness of the method. 展开更多
关键词 decision making fusion incomplete certain information preference ordering ternary AHP MULTIAGENT
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Non-gyroscope DR and adaptive information fusion algorithm used in GPS/DR device
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作者 Li Qingli Xue Yongqi +1 位作者 Shang Yanlei Shi Pengfei 《Journal of Systems Engineering and Electronics》 SCIE EI CSCD 2006年第2期390-395,共6页
In view of the problems existing in GPS, a non-gyroscope DR is introduced. The operating principle and the algorithm of the GPS/DR device are also presented. By operating measured data synthetically, linear observatio... In view of the problems existing in GPS, a non-gyroscope DR is introduced. The operating principle and the algorithm of the GPS/DR device are also presented. By operating measured data synthetically, linear observation equations are obtained for the information fusion algorithm. This approach avoids model error due to linearizing nonlinear observation equations in the conventional algorithm, so that the stability of information fusion algorithm is improved and computation expenses are reduced. Field running experiments show that satisfactory accuracy can be obtained by the proposed navigation model and algorithm for the non-gyroscope GPS/DR device. 展开更多
关键词 non-gyroscope DR GPS integrated navigation system information fusion.
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Sensor management based on fisher information gain 被引量:3
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作者 Tian Kangsheng Zhu Guangxi 《Journal of Systems Engineering and Electronics》 SCIE EI CSCD 2006年第3期531-534,共4页
Multi-sensor system is becoming increasingly important in a variety of military and civilian applications. In general, single sensor system can only provide partial information about environment while multi-sensor sys... Multi-sensor system is becoming increasingly important in a variety of military and civilian applications. In general, single sensor system can only provide partial information about environment while multi-sensor system provides a synergistic effect, which improves the quality and availability of information. Data fusion techniques can effectively combine this environmental information from similar and/or dissimilar sensors. Sensor management, aiming at improving data fusion performance by controlling sensor behavior, plays an important role in a data fusion process. This paper presents a method using fisher information gain based sensor effectiveness metric for sensor assignment in multi-sensor and multi-target tracking applications. The fisher information gain is computed for every sensor-target pairing on each scan. The advantage for this metric over other ones is that the fisher information gain for the target obtained by multi-sensors is equal to the sum of ones obtained by the individual sensor, so standard transportation problem formulation can be used to solve this problem without importing the concept of pseudo sensor. The simulation results show the effectiveness of the method. 展开更多
关键词 data fusion sensor management fisher information gain linear programming.
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Investigation of system structure and information processing mechanism for cognitive skywave over-the-horizon radar 被引量:8
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作者 Xia Wu Jianwen Chen Kun Lu 《Journal of Systems Engineering and Electronics》 SCIE EI CSCD 2016年第4期797-806,共10页
Based on the cognitive radar concept and the basic connotation of cognitive skywave over-the-horizon radar(SWOTHR), the system structure and information processingmechanism about cognitive SWOTHR are researched. Amo... Based on the cognitive radar concept and the basic connotation of cognitive skywave over-the-horizon radar(SWOTHR), the system structure and information processingmechanism about cognitive SWOTHR are researched. Amongthem, the hybrid network system architecture which is thedistributed configuration combining with the centralized cognition and its soft/hardware framework with the sense-detectionintegration are proposed, and the information processing framebased on the lens principle and its information processing flowwith receive-transmit joint adaption are designed, which buildand parse the work law for cognition and its self feedback adjustment with the lens focus model and five stages informationprocessing sequence. After that, the system simulation andthe performance analysis and comparison are provided, whichinitially proves the rationality and advantages of the proposedideas. Finally, four important development ideas of futureSWOTHR toward "high frequency intelligence information processing system" are discussed, which are scene information fusion, dynamic reconfigurable system, hierarchical and modulardesign, and sustainable development. Then the conclusion thatthe cognitive SWOTHR can cause the performance improvement is gotten. 展开更多
关键词 cognitive radar skywave over-the-horizon radar system structure intelligence information processing information fusion target detection
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Investigation of MAS structure and intelligent^(+) information processing mechanism of hypersonic target detection and recognition system 被引量:2
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作者 WU Xia LI Yan +4 位作者 SUN Yongjian CHEN Alei CHEN Jianwen MA Jianchao CHEN Hao 《Journal of Systems Engineering and Electronics》 SCIE EI CSCD 2020年第6期1105-1115,共11页
The hypersonic target detection and recognition system is studied,on the basis of overall planning and design,a multi-agent system(MAS)structure and intelligent+information processing mechanism based on target detecti... The hypersonic target detection and recognition system is studied,on the basis of overall planning and design,a multi-agent system(MAS)structure and intelligent+information processing mechanism based on target detection and recognition are proposed,and the multi-agent operation process is analyzed and designed in detail.In the specific agents construction,the information fusion technology is introduced to defining the embedded agents and their interrelations in the system structure,and the intelligent processing ability of complex and uncertain problems is emphatically analyzed from the aspects of autonomy and collaboration.The aim is to optimize the information processing strategy of the hypersonic target detection and recognition system and improve the robustness and rapidity of the system. 展开更多
关键词 hypersonic target detection recognition intelligent information fusion multi-agent system(MAS)
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基于同源信息融合的废旧机械零件再制造工艺方案决策方法 被引量:1
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作者 王蕾 杨润航 +2 位作者 张泽琳 夏绪辉 郭钰瑶 《机床与液压》 北大核心 2026年第4期117-124,共8页
针对废旧机械零件包含与再制造过程相关的信息数据量多、结构多样,导致再制造工艺方案决策考虑因素不全面、效率和准确率低的问题,提出一种基于同源信息融合的废旧机械零件再制造工艺方案决策方法。分析废旧机械零件的同源信息特性,构... 针对废旧机械零件包含与再制造过程相关的信息数据量多、结构多样,导致再制造工艺方案决策考虑因素不全面、效率和准确率低的问题,提出一种基于同源信息融合的废旧机械零件再制造工艺方案决策方法。分析废旧机械零件的同源信息特性,构建混合词嵌入的零件信息融合模型;采用BiLSTM-Attention模型建立零件信息与典型工艺方案的映射关系;采用BART模型生成具有一定顺序性的再制造工艺;以经济、资源为评价指标,建立云模型-熵权法-TOPSIS的再制造工艺方案评价体系。以废旧轴类零件的再制造过程为例,验证所提方法的有效性和实用性。结果表明:所提映射模型准确率为85.91%,相比LSTM、BiLSTM分别提高了10.20%和2.34%;将BART模型与T5、Flan-T5、Seq2Seq模型进行对比,以条件概率为评价指标,在满足工艺顺序逻辑性的前提下,BART模型的准确率最高,有效准确地生成该零件的工艺方案,为再制造企业提供参考。 展开更多
关键词 再制造 废旧机械零件 信息融合 工艺方案决策方法
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人工智能背景下个人信息保护制度的挑战与应对 被引量:2
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作者 丁晓东 《政治与法律》 北大核心 2026年第1期101-116,共16页
人工智能对个人信息保护制度提出了一系列挑战。究其根源,个人信息保护制度起源于档案化个人信息时代,其针对的典型场景是行政机构低频处理少量档案类个人信息。在以互联网与信息技术为代表的前人工智能时代,个人信息处理的典型场景就... 人工智能对个人信息保护制度提出了一系列挑战。究其根源,个人信息保护制度起源于档案化个人信息时代,其针对的典型场景是行政机构低频处理少量档案类个人信息。在以互联网与信息技术为代表的前人工智能时代,个人信息处理的典型场景就已经转换为企业高频处理大规模行为类个人信息。在人工智能背景下,个人信息处理的典型场景进一步演化为海量个人信息的融合汇聚型处理,其对数据的处理类似水库对海量水滴的汇聚与融合利用。人工智能背景下的个人信息保护原理与制度应当与人工智能处理的典型场景对齐,其原则应从静态预防迈向动态发展思维,从激化对抗迈向信任互惠,从个体主义迈向群体主义。在此基础上,其具体制度模块也应进行相应调整与重构。人工智能处理个人信息应成为个人信息保护制度改革的试验田,个人信息保护的一般原理与制度也应借机进行改革与完善。 展开更多
关键词 人工智能 个人信息保护 发展与安全 个体控制 汇聚融合
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基于D-S证据融合的可解释多分类财务危机预警模型 被引量:1
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作者 宋媚 李佳蔚 +1 位作者 高峰 洪维强 《系统管理学报》 北大核心 2026年第2期452-461,共10页
针对传统二分类财务困境预测模型难以提供细粒度分级预警问题,本文构建了一个基于财务与非财务信息融合的可解释多分类财务危机预警模型。首先,通过引入管理层讨论与分析(MD&A)语调信息,丰富中小企业数据源;其次,采用RF、LightGBM和... 针对传统二分类财务困境预测模型难以提供细粒度分级预警问题,本文构建了一个基于财务与非财务信息融合的可解释多分类财务危机预警模型。首先,通过引入管理层讨论与分析(MD&A)语调信息,丰富中小企业数据源;其次,采用RF、LightGBM和SVM对中小企业财务状况进行初步预测,并运用改进的D-S证据理论对结果进行二次融合;最后,借助SHAP框架对模型进行可解释性分析。研究发现:基于信息融合模型的F1值相比最优基分类器提升了1.3%,能够有效避免预测“灾难点”的出现,同时揭示了资产负债率、每股未分配利润和净资产收益率等指标在财务预警中的重要作用。本文模型具备更精准的财务危机定位能力和更稳定的预测效果,为中小企业财务危机预警研究提供了新视角。 展开更多
关键词 多分类 财务危机预警 信息融合 SHAP 决策支持
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土壤盐渍化遥感监测信息提取与处理模型研究进展 被引量:1
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作者 王学琴 汪西原 《安徽农业科学》 2026年第1期18-23,共6页
土壤盐渍化是造成土地荒漠化以及作物产量降低的主要原因之一。遥感监测技术凭借其宏观视角和丰富的信息量为快速实现大面积土壤盐渍化动态监测提供了新途径。通过梳理国内外土壤盐渍化遥感监测研究相关文献,从盐渍化土壤分类、土壤含... 土壤盐渍化是造成土地荒漠化以及作物产量降低的主要原因之一。遥感监测技术凭借其宏观视角和丰富的信息量为快速实现大面积土壤盐渍化动态监测提供了新途径。通过梳理国内外土壤盐渍化遥感监测研究相关文献,从盐渍化土壤分类、土壤含盐量反演及土壤盐渍化动态监测3类应用入手,总结了土壤盐渍化遥感监测信息提取与处理模型的研究进展与标志性成果。结果表明:近年来该领域的研究热点在于通过将卫星、航空、地面不同平台的多源遥感数据与深度学习协同提高土壤盐渍化遥感监测模型的精度;在不同遥感监测模型的构建中,建模因子的选取呈现多元化、综合化趋势;遥感图像与土壤盐度间的尺度效应问题,需协调不同分辨率图像之间的互补性,深入挖掘其内部关系。 展开更多
关键词 土壤盐渍化 信息提取 尺度效应 异质性遥感影像融合 动态监测
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基于平滑迭代ESKF的无人船位姿估计算法
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作者 刘超 李淑青 +1 位作者 沈跃 刘慧 《电子测量技术》 北大核心 2026年第7期64-73,共10页
针对小型无人船易受到水面复杂环境影响及自身低频振动干扰,导致位姿估计精度低,无法提供可靠有效信息等问题,提出一种基于平滑迭代误差卡尔曼滤波的无人船位姿估计算法。在低速工况下,利用加速度计对纵摇角与横摇角进行补偿修正;在微... 针对小型无人船易受到水面复杂环境影响及自身低频振动干扰,导致位姿估计精度低,无法提供可靠有效信息等问题,提出一种基于平滑迭代误差卡尔曼滤波的无人船位姿估计算法。在低速工况下,利用加速度计对纵摇角与横摇角进行补偿修正;在微机电系统(MEMS)传感器数据融合环节采用改进固定区间平滑算法,使用下一时刻新息对误差状态变量进行反向平滑修正的同时,进行时间反向逆推修正,减少低频线振动对有效信号的干扰;采用平滑估计值对量测值进行预测修正,每一时刻新息可反复迭代修正估计值和量测值,以提高整体位姿估计精度。实验结果表明,相较于误差状态卡尔曼滤波,平滑迭代误差状态卡尔曼滤波算法,横摇角、纵摇角和艏摇角均方根误差分别减少0.7621°、1.8188°、0.3405°;正常水面航行情况下,东向、北向、天向速度均方根误差分别减少0.4023、0.2394、0.1165 m/s;东向、北向、天向位置均方根误差分别减少0.1484、0.2589、0.0832 m,能够为无人船提供更为精准的位姿信息。 展开更多
关键词 无人船 误差状态卡尔曼滤波 平滑迭代 信息融合 组合导航
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