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Belief exponential divergence for D-S evidence theory and its application in multi-source information fusion 被引量:2
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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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Multi-source information fused generative adversarial network model and data assimilation based history matching for reservoir with complex geologies 被引量:5
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作者 Kai Zhang Hai-Qun Yu +7 位作者 Xiao-Peng Ma Jin-Ding Zhang Jian Wang Chuan-Jin Yao Yong-Fei Yang Hai Sun Jun Yao Jian Wang 《Petroleum Science》 SCIE CAS CSCD 2022年第2期707-719,共13页
For reservoirs with complex non-Gaussian geological characteristics,such as carbonate reservoirs or reservoirs with sedimentary facies distribution,it is difficult to implement history matching directly,especially for... For reservoirs with complex non-Gaussian geological characteristics,such as carbonate reservoirs or reservoirs with sedimentary facies distribution,it is difficult to implement history matching directly,especially for the ensemble-based data assimilation methods.In this paper,we propose a multi-source information fused generative adversarial network(MSIGAN)model,which is used for parameterization of the complex geologies.In MSIGAN,various information such as facies distribution,microseismic,and inter-well connectivity,can be integrated to learn the geological features.And two major generative models in deep learning,variational autoencoder(VAE)and generative adversarial network(GAN)are combined in our model.Then the proposed MSIGAN model is integrated into the ensemble smoother with multiple data assimilation(ESMDA)method to conduct history matching.We tested the proposed method on two reservoir models with fluvial facies.The experimental results show that the proposed MSIGAN model can effectively learn the complex geological features,which can promote the accuracy of history matching. 展开更多
关键词 multi-source information Automatic history matching Deep learning Data assimilation Generative model
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Enhancing train position perception through Al-driven multi-source information fusion 被引量:3
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作者 Haifeng Song Zheyu Sun +3 位作者 Hongwei Wang Tianwei Qu Zixuan Zhang Hairong Dong 《Control Theory and Technology》 EI CSCD 2023年第3期425-436,共12页
This paper addresses the challenge of accurately and timely determining the position of a train,with specific consideration given to the integration of the global navigation satellite system(GNSS)and inertial navigati... This paper addresses the challenge of accurately and timely determining the position of a train,with specific consideration given to the integration of the global navigation satellite system(GNSS)and inertial navigation system(INS).To overcome the increasing errors in the INS during interruptions in GNSS signals,as well as the uncertainty associated with process and measurement noise,a deep learning-based method for train positioning is proposed.This method combines convolutional neural networks(CNN),long short-term memory(LSTM),and the invariant extended Kalman filter(IEKF)to enhance the perception of train positions.It effectively handles GNSS signal interruptions and mitigates the impact of noise.Experimental evaluation and comparisons with existing approaches are provided to illustrate the effectiveness and robustness of the proposed method. 展开更多
关键词 Train positioning Deep learning multi-source information fusion Dynamic adaptive model
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Fault location of distribution networks based on multi-source information 被引量:8
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作者 Wenbo Li Jianjun Su +2 位作者 Xin Wang Jiamei Li Qian Ai 《Global Energy Interconnection》 2020年第1期77-85,共9页
In order to promote the development of the Internet of Things(IoT),there has been an increase in the coverage of the customer electric information acquisition system(CEIAS).The traditional fault location method for th... In order to promote the development of the Internet of Things(IoT),there has been an increase in the coverage of the customer electric information acquisition system(CEIAS).The traditional fault location method for the distribution network only considers the information reported by the Feeder Terminal Unit(FTU)and the fault tolerance rate is low when the information is omitted or misreported.Therefore,this study considers the influence of the distributed generations(DGs)for the distribution network.This takes the CEIAS as a redundant information source and solves the model by applying a binary particle swarm optimization algorithm(BPSO).The improved Dempster/S-hafer evidence theory(D-S evidence theory)is used for evidence fusion to achieve the fault section location for the distribution network.An example is provided to verify that the proposed method can achieve single or multiple fault locations with a higher fault tolerance. 展开更多
关键词 Internet of Things multi-source information D-S evidence theory Binary particle swarm optimization algorithm Fault tolerance
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A multi-source information fusion method for tool life prediction based on CNN-SVM
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作者 Shuo WANG Zhenliang YU +1 位作者 Peng LIU Man Tong WANG 《Mechanical Engineering Science》 2022年第2期1-10,I0003,I0004,共12页
For milling tool life prediction and health management,accurate extraction and dimensionality reduction of its tool wear features are the key to reduce prediction errors.In this paper,we adopt multi-source information... For milling tool life prediction and health management,accurate extraction and dimensionality reduction of its tool wear features are the key to reduce prediction errors.In this paper,we adopt multi-source information fusion technology to extract and fuse the features of cutting vibration signal,cutting force signal and acoustic emission signal in time domain,frequency domain and time-frequency domain,and downscale the sample features by Pearson correlation coefficient to construct a sample data set;then we propose a tool life prediction model based on CNN-SVM optimized by genetic algorithm(GA),which uses CNN convolutional neural network as the feature learner and SVM support vector machine as the trainer for regression prediction.The results show that the improved model in this paper can effectively predict the tool life with better generalization ability,faster network fitting,and 99.85%prediction accuracy.And compared with the BP model,CNN model,SVM model and CNN-SVM model,the performance of the coefficient of determination R2 metric improved by 4.88%,2.96%,2.53%and 1.34%,respectively. 展开更多
关键词 CNN-SVM tool wear life prediction multi-source information fusion
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Efficient feature selection for enhanced chiller fault diagnosis:A multi-source ranking information-driven ensemble approach
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作者 Zhanwei Wang Penghua Xia +4 位作者 Jingjing Guo Sai Zhou Lin Wang Yu Wang Chunxiao Zhang 《Building Simulation》 2025年第1期141-159,共19页
Fault diagnosis(FD)is essential for ensuring the reliable operation of chillers and preventing energy waste.Feature selection(FS)is a critical prerequisite for effective FD.However,current FS methods have two major ga... Fault diagnosis(FD)is essential for ensuring the reliable operation of chillers and preventing energy waste.Feature selection(FS)is a critical prerequisite for effective FD.However,current FS methods have two major gaps.First,most approaches rely on single-source ranking information(SSRI)to evaluate features individually,which results in non-robust outcomes across different models and datasets due to the one-sided nature of SSRI.Second,thermodynamic mechanism features are often overlooked,leading to incomplete initial feature libraries,making it challenging to select optimal features and achieve better diagnostic performance.To address these issues,a robust ensemble FS method based on multi-source ranking information(MSRI)is proposed.By employing an efficient strategy based on maximizing relevance while proper redundancy,the MSRI method fully leverages Mutual Information,Information Gain,Gain Ratio,Gini index,Chi-squared,and Relief-F from both qualitative and quantitative perspectives.Additionally,comprehensive consideration of thermodynamic mechanism features ensures a complete initial feature library.From a methodological standpoint,a general framework for constructing the MSRI-based FS method is provided.The proposed method is applied to chiller FD and tested across ten widely-used machine learning models.Thirteen optimized features are selected from the original set of forty-two,achieving an average diagnostic accuracy of 98.40%and an average F-measure above 94.94%,demonstrating the effectiveness and generalizability of the MSRI method.Compared to the SSRI approach,the MSRI method shows superior robustness,with the standard deviation of diagnostic accuracy reduced by 0.03 to 0.07 and an improvement in diagnostic accuracy ranging from 2.53%to 6.12%.Moreover,the MSRI method reduced computation time by 98.62%compared to wrapper methods,without sacrificing accuracy. 展开更多
关键词 CHILLER feature selection fault diagnosis multi-source ranking information machine learning
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Structural damage detection method based on information fusion technique 被引量:1
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作者 刘涛 李爱群 +1 位作者 丁幼亮 费庆国 《Journal of Southeast University(English Edition)》 EI CAS 2008年第2期201-205,共5页
Multi-source information fusion (MSIF) is imported into structural damage diagnosis methods to improve the validity of damage detection. After the introduction of the basic theory, the function model, classification... Multi-source information fusion (MSIF) is imported into structural damage diagnosis methods to improve the validity of damage detection. After the introduction of the basic theory, the function model, classifications and mathematical methods of MSIF, a structural damage detection method based on MSIF is presented, which is to fuse two or more damage character vectors from different structural damage diagnosis methods on the character-level. In an experiment of concrete plates, modal information is measured and analyzed. The structural damage detection method based on MSIF is taken to localize cracks of concrete plates and it is proved to be effective. Results of damage detection by the method based on MSIF are compared with those from the modal strain energy method and the flexibility method. Damage, which can hardly be detected by using the single damage identification method, can be diagnosed by the damage detection method based on the character-level MSIF technique. Meanwhile multi-location damage can be identified by the method based on MSIF. This method is sensitive to structural damage and different mathematical methods for MSIF have different preconditions and applicabilities for diversified structures. How to choose mathematical methods for MSIF should be discussed in detail in health monitoring systems of actual structures. 展开更多
关键词 multi-source information fusion structural damage detection Bayes method D-S evidence theory
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Multi-source information response characteristics of surrounding rock catastrophic instability in deep roadways with four-dimensional support
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作者 Pengfei Yan Zhanguo Ma +5 位作者 Hongbo Li Peng Gong Haihui Zhao Chuanchuan Cai Mingshuo Xu Tianqi She 《Journal of Rock Mechanics and Geotechnical Engineering》 2025年第11期7183-7207,共25页
As coal mining progresses to greater depths,controlling the stability of surrounding rock in deep roadways has become an increasingly complex challenge.Although four-dimensional(4D)support theoretically offers unique ... As coal mining progresses to greater depths,controlling the stability of surrounding rock in deep roadways has become an increasingly complex challenge.Although four-dimensional(4D)support theoretically offers unique advantages in maintaining the stability of rock mass,the disaster evolution processes and multi-source information response characteristics in deep roadways with 4D support remain unclear.Consequently,a large-scale physical model testing system and self-designed 4D support components were employed to conduct similarity model tests on the surrounding rock failure process under unsupported(U-1),traditional bolt-mesh-cable support(T-2),and 4D support(4D-R-3)conditions.Combined with multi-source monitoring techniques,including stress–strain,digital image correlation(DIC),acoustic emission(AE),microseismic(MS),parallel electric(PE),and electromagnetic radiation(EMR),the mechanical behavior and multi-source information responses were comprehensively analyzed.The results show that the peak stress and displacement of the models are positively correlated with the support strength.The multi-source information exhibits distinct response characteristics under different supports.The response frequency,energy,and fluctuationsof AE,MS,and EMR signals,along with the apparent resistivity(AR)high-resistivity zone,follow the trend U-1>T-2>4D-R-3.Furthermore,multi-source information exhibits significantdifferences in sensitivity across different phases.The AE,MS,and EMR signals exhibit active responses to rock mass activity at each phase.However,AR signals are only sensitive to the fracture propagation during the plastic yield and failure phases.In summary,the 4D support significantlyenhances the bearing capacity and plastic deformation of the models,while substantially reducing the frequency,energy,and fluctuationsof multi-source signals. 展开更多
关键词 Physical model Deep roadway Four-dimensional(4D)support multi-source monitoring information Catastrophic instability process
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Information fusion diagnosis and early-warning method for monitoring the long-term service safety of high dams 被引量:3
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作者 Xing LIU Zhong-ru WU +2 位作者 Yang YANG Jiang HU Bo XU 《Journal of Zhejiang University-Science A(Applied Physics & Engineering)》 SCIE EI CAS CSCD 2012年第9期687-699,共13页
Analyzing the service behavior of high dams and establishing early-warning systems for them have become increasingly important in ensuring their long-term service.Current analysis methods used to obtain safety monitor... Analyzing the service behavior of high dams and establishing early-warning systems for them have become increasingly important in ensuring their long-term service.Current analysis methods used to obtain safety monitoring data are suited only to single survey point data.Unreliable or even paradoxical results are inevitably obtained when processing large amounts of monitoring data,thereby causing difficulty in acquiring precise conclusions.Therefore,we have developed a new method based on multi-source information fusion for conducting a comprehensive analysis of prototype monitoring data of high dams.In addition,we propose the use of decision information entropy analysis for building a diagnosis and early-warning system for the long-term service of high dams.Data metrics reduction is achieved using information fusion at the data level.A Bayesian information fusion is then conducted at the decision level to obtain a comprehensive diagnosis.Early-warning outcomes can be released after sorting analysis results from multi-positions in the dam according to importance.A case study indicates that the new method can effectively handle large amounts of monitoring data from numerous survey points.It can likewise obtain precise real-time results and export comprehensive early-warning outcomes from multi-positions of high dams. 展开更多
关键词 Dam monitoring DIAGNOSIS Early-warning multi-source information fusion information entropy
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An information-volume-based distance measure for decision-making 被引量:1
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作者 Zhanhao ZHANG Fuyuan XIAO 《Chinese Journal of Aeronautics》 SCIE EI CAS CSCD 2023年第5期392-405,共14页
D-S evidence theory,as a general framework for reasoning with uncertainty,allows combining pieces of evidence from different information sources to derive a degree of belief function that is a type of fuzzy measure.Ho... D-S evidence theory,as a general framework for reasoning with uncertainty,allows combining pieces of evidence from different information sources to derive a degree of belief function that is a type of fuzzy measure.However,the mass assignments given by unknown information sources are disordered.How to measure the difference between the mass assignments has aroused people’s interest.In this paper,inspired by the information volume,a novel distance-based measure is proposed to measure the difference between mass assignments.The method can refine the uncertain information given by experts and compare the refined information to obtain the difference between mass assignments.At the same time,it is verified that the measure not only meets the properties of distance,but also proves the superiority of the proposed Information Volume Distance(IVD)through simulation experiments.Meanwhile,in the process of information fusion,the reliability of each source could be quantified through IVD.Therefore,based on IVD,a new multi-source information algorithm is proposed to solve the problem of multi-source information fusion.Moreover,algorithm is applied to decision-making problem and compare with other methods to verify the effectiveness. 展开更多
关键词 Basic belief assignments DECISION-MAKING Distance measure Evidence theory multi-source information fusion
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Information freshness optimization of multiple status update streams in Internet of things:Generation rate control and service rate reservation 被引量:1
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作者 Tianci Zhang Junjie Zhou +3 位作者 Zhengchuan Chen Zhong Tian Wanli Wen Yunjian Jia 《Digital Communications and Networks》 SCIE CSCD 2023年第4期971-980,共10页
The Internet of things(IoT)has become a key infrastructure providing up-to-date and fresh information for policy analysis and decision-making of upper-layer applications.However,there are limited sensing and communica... The Internet of things(IoT)has become a key infrastructure providing up-to-date and fresh information for policy analysis and decision-making of upper-layer applications.However,there are limited sensing and communication resources in IoT devices,which significantly affects the timeliness and freshness of the updated status.This work proposes two schemes,namely,the generation rate control and service rate reservation schemes,to improve the overall information freshness of multiple status update streams at the receiver.Specifically,using the recently proposed Age of Information(AoI)as the metric for evaluating information freshness,we characterized the overall information freshness,i.e.,the overall average AoI at the receiver for both schemes,by considering the urgency difference of status update and streams.Both schemes for status updates and streams,respectively,were formulated as two optimization problems.We proved that both problems are convex and the optimal generation and service rates for different streams are found by the standard convex optimization algorithm.Moreover,we proposed both approximate optimal generation and approximate optimal service rate for fast deployment in heavy and light load cases.Numerical results verify the theoretical findings and accuracy of the proposed approximate solutions,guiding the design and deployment of IoT. 展开更多
关键词 Internet of things information freshness Age of information multi-source M/M/1 queuing model
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An Analysis Model of Learners’ Online Learning Status Based on Deep Neural Network and Multi-Dimensional Information Fusion
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作者 Mingyong Li Lirong Tang +3 位作者 Longfei Ma Honggang Zhao Jinyu Hu Yan Wei 《Computer Modeling in Engineering & Sciences》 SCIE EI 2023年第6期2349-2371,共23页
The learning status of learners directly affects the quality of learning.Compared with offline teachers,it is difficult for online teachers to capture the learning status of students in the whole class,and it is even ... The learning status of learners directly affects the quality of learning.Compared with offline teachers,it is difficult for online teachers to capture the learning status of students in the whole class,and it is even more difficult to continue to pay attention to studentswhile teaching.Therefore,this paper proposes an online learning state analysis model based on a convolutional neural network and multi-dimensional information fusion.Specifically,a facial expression recognition model and an eye state recognition model are constructed to detect students’emotions and fatigue,respectively.By integrating the detected data with the homework test score data after online learning,an analysis model of students’online learning status is constructed.According to the PAD model,the learning state is expressed as three dimensions of students’understanding,engagement and interest,and then analyzed from multiple perspectives.Finally,the proposed model is applied to actual teaching,and procedural analysis of 5 different types of online classroom learners is carried out,and the validity of the model is verified by comparing with the results of the manual analysis. 展开更多
关键词 Deep learning fatigue detection facial expression recognition sentiment analysis information fusion
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人脸识别的治理困境与规制改进
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作者 吴旭莉 《厦门大学学报(哲学社会科学版)》 北大核心 2025年第4期103-114,共12页
人脸识别技术具有人脸信息收集渠道隐蔽且多样、技术安全漏洞、人脸信息的唯一性与不可逆性等技术风险。人脸识别技术治理的法律困境包括知情—同意原则被虚化,人脸信息保护的权利基础存在争议,技术滥用侵害个人权益,主体维权意识薄弱... 人脸识别技术具有人脸信息收集渠道隐蔽且多样、技术安全漏洞、人脸信息的唯一性与不可逆性等技术风险。人脸识别技术治理的法律困境包括知情—同意原则被虚化,人脸信息保护的权利基础存在争议,技术滥用侵害个人权益,主体维权意识薄弱、侵权救济困难等问题。人脸识别保护的权利跨越公法权利与私权领域,对其治理应当打破部门法的界限,寻求人脸识别技术的开发、利用与主体权利保护之间的平衡。优化人脸识别技术的规制,应秉持“以人为本”的治理理念,强化人脸信息控制者的信义义务,落实比例原则,坚持最小限度的适用,引入监管沙盒,改进维权模式,探索具有中国特色的人脸识别治理路径。 展开更多
关键词 人脸识别 私密信息 基本权利 隐私权 信义义务 比例原则 监管沙盒
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深度伪造人脸生成与检测技术综述 被引量:4
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作者 杨宏宇 李星航 胡泽 《华中科技大学学报(自然科学版)》 北大核心 2025年第5期85-103,共19页
面对深度伪造技术在人脸伪造领域的应用对信息安全构成的严重威胁,首先,全面回顾并总结了深度伪造人脸生成技术的最新进展和主要特点.该技术欺骗性强、伪造成本低且检测难度高,使公众和现有检测手段难以有效分辨与检测;其次,根据伪造类... 面对深度伪造技术在人脸伪造领域的应用对信息安全构成的严重威胁,首先,全面回顾并总结了深度伪造人脸生成技术的最新进展和主要特点.该技术欺骗性强、伪造成本低且检测难度高,使公众和现有检测手段难以有效分辨与检测;其次,根据伪造类型差异,将深度伪造人脸生成技术分为人脸完全生成、属性编辑、身份替换和面部重演四类,并针对各类型技术展开详细阐述与分析,明确其技术原理与应用场景;再次,系统总结归纳了深度伪造人脸检测技术涉及的真实人脸与深度伪造人脸数据集,同时以特征选择为切入点将现有深度伪造人脸检测方法进行分类和分析比较,包括基于生物特征、身份信息、图像空间特征、图像频域特征、时序特征和混合特征的检测方法等;最后,分别探讨了深度伪造人脸生成与检测技术领域面临的挑战及未来研究方向. 展开更多
关键词 深度伪造技术 人脸伪造 深度伪造检测 媒体取证 信息安全
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结直肠癌舌面象色度参数研究
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作者 许晓妍 胡晓娟 +4 位作者 屠立平 江涛 崔龙涛 赵海磊 许家佗 《中华中医药杂志》 北大核心 2025年第3期1131-1136,共6页
目的:研究对照组和结直肠癌患者的舌面象色度参数差异及结直肠癌患者对应的面象分部特征规律。方法:运用TFDA-1型数字舌面诊仪检测203例对照组及134例结直肠癌患者的舌面客观参数,用t检验、Mann-Whitney U等统计学方法对提取的信息进行... 目的:研究对照组和结直肠癌患者的舌面象色度参数差异及结直肠癌患者对应的面象分部特征规律。方法:运用TFDA-1型数字舌面诊仪检测203例对照组及134例结直肠癌患者的舌面客观参数,用t检验、Mann-Whitney U等统计学方法对提取的信息进行数据分析。结果:与对照组比较,早期、中晚期结直肠癌患者TC-I、TC-S、TC-L、TC-Y、TB-I、TB-L、TB-Y及舌苔RGB、舌质RGB等指标均显著降低(P<0.01);对照组及早期、中晚期结直肠癌患者的左右颧、左右颊面诊色度参数总体趋势一致,R、G、B、V、L、a、Y值均显著降低,S、Cb均显著升高(P<0.05)。结论:对照组与不同分期结直肠癌的舌面象色度参数有一定分布规律,可为结直肠癌分期诊断及预后提供依据。 展开更多
关键词 望诊 结直肠癌 中医诊断 舌面信息 色度参数
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儿童生长发育相关疾病颜面表型与临床资料数据库的构建流程及质量控制要点
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作者 强佳祺 王映晶 +5 位作者 吴丹宁 刘润竹 黄久佐 潘慧 龙笑 陈适 《协和医学杂志》 北大核心 2025年第3期552-557,共6页
儿童生长发育是生命健康的重要阶段,其监测与干预关系到个体长期发展。构建标准化、多维度的儿童生长发育相关疾病数据库,是实现精准诊疗和健康管理的重要基础。基于临床实践需求,本文提出应建立融合颜面表型与临床诊疗信息的儿童生长... 儿童生长发育是生命健康的重要阶段,其监测与干预关系到个体长期发展。构建标准化、多维度的儿童生长发育相关疾病数据库,是实现精准诊疗和健康管理的重要基础。基于临床实践需求,本文提出应建立融合颜面表型与临床诊疗信息的儿童生长发育相关疾病专科数据库,阐述了其构建流程,包括数据来源、数据采集内容和数据库的运行与管理,并提出质量控制要点,包括质控节点设立、数据库构建规范和全流程质控框架。上述措施为数据的完整性、逻辑性和有效性提供了保障,使得数据库可为儿童生长发育相关疾病的筛查与诊治提供客观依据,对临床、教学、科研形成全面支持。在科学的数据管理和严格质量控制的基础上,该数据库将有助于揭示儿童生长发育的规律,助力儿童健康管理水平迈上新台阶。 展开更多
关键词 儿童生长发育 颜面表型 临床数据库 质量控制 医学信息管理
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基于生成式对抗网络的多人脸图像局部伪造特征智能检测方法 被引量:1
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作者 朱振刚 严海兵 杨萌 《苏州科技大学学报(自然科学版)》 2025年第1期82-88,共7页
多人脸图像相较于单人脸图像,其复杂性更高。攻击者通常仅针对图像的局部区域进行篡改,加大了检测难度。为此,本文提出了基于生成式对抗网络的多人脸图像局部伪造特征智能检测方法。结合多人脸图像的模糊性分布特征,进行边缘识别检测与... 多人脸图像相较于单人脸图像,其复杂性更高。攻击者通常仅针对图像的局部区域进行篡改,加大了检测难度。为此,本文提出了基于生成式对抗网络的多人脸图像局部伪造特征智能检测方法。结合多人脸图像的模糊性分布特征,进行边缘识别检测与模糊信息分簇。并建立超分辨识别模型,以获取面部阴影区域特征分值,实现多人脸图像特征分割。在此基础上,利用生成式对抗网络生成逼真的虚假数据以欺骗区分器,结合径向基函数对支持向量机分类模型进行伪造检测。研究表明,所提方法能精准检测出人脸图像局部伪造特征,适用于多角度人脸图像伪造检测。 展开更多
关键词 人脸图像伪造 生成式对抗网络 模糊信息法 边缘感知 支持向量机
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Multi-scale intelligent fusion and dynamic validation for high-resolution seismic data processing in drilling
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作者 YUAN Sanyi XU Yanwu +2 位作者 XIE Renjun CHEN Shuai YUAN Junliang 《Petroleum Exploration and Development》 2025年第3期680-691,共12页
During drilling operations,the low resolution of seismic data often limits the accurate characterization of small-scale geological bodies near the borehole and ahead of the drill bit.This study investigates high-resol... During drilling operations,the low resolution of seismic data often limits the accurate characterization of small-scale geological bodies near the borehole and ahead of the drill bit.This study investigates high-resolution seismic data processing technologies and methods tailored for drilling scenarios.The high-resolution processing of seismic data is divided into three stages:pre-drilling processing,post-drilling correction,and while-drilling updating.By integrating seismic data from different stages,spatial ranges,and frequencies,together with information from drilled wells and while-drilling data,and applying artificial intelligence modeling techniques,a progressive high-resolution processing technology of seismic data based on multi-source information fusion is developed,which performs simple and efficient seismic information updates during drilling.Case studies show that,with the gradual integration of multi-source information,the resolution and accuracy of seismic data are significantly improved,and thin-bed weak reflections are more clearly imaged.The updated seismic information while-drilling demonstrates high value in predicting geological bodies ahead of the drill bit.Validation using logging,mud logging,and drilling engineering data ensures the fidelity of the processing results of high-resolution seismic data.This provides clearer and more accurate stratigraphic information for drilling operations,enhancing both drilling safety and efficiency. 展开更多
关键词 high-resolution seismic data processing while-drilling update while-drilling logging multi-source information fusion thin-bed weak reflection artificial intelligence modeling
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论人脸信息的收集规则
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作者 张龙 周雨婷 《重庆邮电大学学报(社会科学版)》 2025年第1期80-90,共11页
人脸信息属于生物识别类敏感个人信息,与个人隐私密切相关。进入数字时代后,人脸信息的数据化让人脸信息的保护迫在眉睫。除法律规定外,作为敏感个人信息的一种,人脸信息的收集应当征得信息主体的同意,应当满足特定的目的、充分的必要... 人脸信息属于生物识别类敏感个人信息,与个人隐私密切相关。进入数字时代后,人脸信息的数据化让人脸信息的保护迫在眉睫。除法律规定外,作为敏感个人信息的一种,人脸信息的收集应当征得信息主体的同意,应当满足特定的目的、充分的必要性和严格保护措施三个前提条件。告知知情同意规则是个体自主价值在数字社会的一种时代表达,只有人脸信息收集者充分告知,信息主体才会对相关内容知情。人脸信息收集者对信息主体充分知情承担举证责任,知情可基于有效告知而推定产生的规则可以倒逼人脸信息收集者充分履行告知义务。同意的作出应当是单独、自愿、明确且能够撤回的,书面同意是单独同意的形式要求,强迫同意应当认定为不同意。同时,同意应当由信息主体书面声明或做出肯定性动作,沉默、预选均非明确的同意。同意是人脸信息收集的合法依据,是一种非典型的意思表示。一个同意仅限于当前特定的信息主体、仅基于特定目的而作出;目的改变的,应当重新征得同意。 展开更多
关键词 人脸识别 人脸信息收集 敏感个人信息 生物识别信息 知情同意
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非法获取或使用“人脸识别信息”行为的刑法规制
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作者 王译 武嘉仪 《西安石油大学学报(社会科学版)》 2025年第3期134-140,共7页
人脸识别技术业已广泛应用于各类场景,但也潜藏着“人脸识别信息”滥用的刑事犯罪风险。从法律属性层面观之,“人脸识别信息”可归于刑法中的“公民个人信息”范畴,立法应当就非法获取或使用“人脸识别信息”的行为科以刑罚。比较域外... 人脸识别技术业已广泛应用于各类场景,但也潜藏着“人脸识别信息”滥用的刑事犯罪风险。从法律属性层面观之,“人脸识别信息”可归于刑法中的“公民个人信息”范畴,立法应当就非法获取或使用“人脸识别信息”的行为科以刑罚。比较域外刑事立法例可知,我国刑法对非法获取或使用“人脸识别信息”的规制仍存在诸多问题亟待解决,主要聚焦于合法获取“人脸识别信息”后“非法使用”的刑法规制缺位问题。未来立法在规制公民个人信息犯罪的司法实践中,还可通过增设“非法使用”行为的法定情形,以明确信息主体的知情同意规则,进而拓展“人脸识别信息”犯罪出罪事由的合理空间。 展开更多
关键词 人脸识别信息 侵犯公民个人信息罪 非法获取或使用 知情同意
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