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Modeling and Vulnerability Analysis of Multi-layer Urban Electric-transportation Interdependent Networks Under Extreme Events
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作者 Gengming Liu Wenxia Liu Qingxin Shi 《CSEE Journal of Power and Energy Systems》 2026年第1期466-480,共15页
The increasing electrification of urban transportation,i.e.,subways and electric vehicles(EV),brings more interactions between the power system and transportation system and further results in fault propagation across... The increasing electrification of urban transportation,i.e.,subways and electric vehicles(EV),brings more interactions between the power system and transportation system and further results in fault propagation across them.To analyze vulnerability of the coupling system under extreme events,this paper establishes a multi-layer urban electric-transportation interdependent network(ETIN)model.First,a weighted coupled metro-road traffic network(CTN)model and network path planning approach are proposed.A prospect theory-based failure load redistribution(FLR)method is further established to account for uncertainty of TN link capacity affected by power supply.Second,topology and emergency control strategy of power network(PN)are modeled,followed by formulation of multi-layer ETIN model.In particular,the inter-layer fault propagation from PN to TN is modeled based on power supply correlation strength,while from TN to PN is modeled based on traffic flow.A few indexes are then defined to quantify vulnerability of ETIN under deliberate attack.Finally,the proposed method is verified on an electric-transportation system to show influence of fault propagations within ETIN on its vulnerability under extreme events. 展开更多
关键词 Electric-traffic interdependent system metro-road traffic coupled network multi-layer interdependent network vulnerability analysis
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ReacNetwork: A method for large-scale reaction network analysis of energetic materials
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作者 Zhonghui Chen Chengjie Tong +5 位作者 Qiang Gan Jie Li Yuhang Tao Gen Li Yajun Wang Changgen Feng 《Defence Technology(防务技术)》 2026年第3期202-216,共15页
The combustion and detonation processes of energetic materials exhibit remarkable complexity and ultra-fast transient characteristics.While reactive molecular dynamics has been extensively employed to investigate the ... The combustion and detonation processes of energetic materials exhibit remarkable complexity and ultra-fast transient characteristics.While reactive molecular dynamics has been extensively employed to investigate the reaction dynamics of energetic materials,its utility is often constrained to capturing only fundamental reaction events and species information,thereby limiting mechanistic investigations of complex reaction pathways.To elucidate the topological features of energetic material reaction networks and identify critical reaction pathways with high fidelity,this study presents ReacNetwork-an advanced large-scale reaction network analysis methodology that synergistically integrates complex network theory with molecular simulation techniques.Specifically,we have developed a multi-dimensional feature screening protocol based on node centrality metrics and K-shell decomposition algorithms.Takingα-Hexahydro-1,3,5-trinitro-1,3,5-triazine(α-RDX)as the subject,we successfully constructed a comprehensive high-temperature thermal decomposition reaction network consisting of 1,134 distinct chemical species and 3,626 elementary reactions.Through systematic application of community detection algorithms and global topological feature extraction techniques,we achieved effective dimensionality reduction and successfully identified the dominant reaction pathway within theα-RDX thermal decomposition network.The computational results not only validate the well-established initial reaction mechanism dominated by N-NO2 homolytic bond cleavage,but also provide unprecedented visualization ofα-RDX framework ring-opening dynamics and subsequent radical chain propagation networks. 展开更多
关键词 Energetic materials RDX reaction network Multi-dimensional feature screening network dimensionality reduction and analysis
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Topological analysis of the depression-anxiety-stress network in vocational college freshmen:A longitudinal trace-based analysis
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作者 Siliang Yang Mengying Xu 《Journal of Psychology in Africa》 2026年第1期21-32,共12页
This study explores the core characteristics,dynamic progression of the depression-anxiety-stress network among Chinese higher vocational college freshmen and its association with life satisfaction,and identifies key ... This study explores the core characteristics,dynamic progression of the depression-anxiety-stress network among Chinese higher vocational college freshmen and its association with life satisfaction,and identifies key nodes and critical intervention points.Participants were 295 higher vocational college freshmen(male=137;M=18.52,SD=0.69)completing two follow-up surveys(5-month interval).Measures included depression-anxiety-stress symptoms and life satisfaction,analyzed via cross-sectional and binary cross-lagged panel network analysis.The results showed that“Easily agitated”was the central node(strength=1.519,EI=1.967);“Irritable”and“Mouth Dryness”were top predictors(Out-EI=1.101,1.100),with depressive symptoms as the convergence hub.“Easily agitated”had the strongest direct negative impact on life satisfaction(cross-cluster out-predictability=−0.653).This study elucidates depression-anxietystress network mechanisms in higher vocational freshmen,providing a theoretical framework and targeted intervention guidance(e.g.,focusing on somatic and emotional nodes). 展开更多
关键词 Vocational college freshmen depression-anxiety-stress network topology longitudinal analysis life satisfaction
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Exploring the Associations between Sedentary Time,Social Support,Social Rejection and Psychological Distress:A Network Analysis in Students
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作者 Yuyang Nie Kunkun Jiang +5 位作者 Tianci Wang Cong Liu Kangli Du Yuxian Cao Guofeng Qu Lijia Hou 《International Journal of Mental Health Promotion》 2026年第1期47-59,共13页
Background:Amid the global rise in adolescent sedentary behavior and psychological distress,extant research has largely focused on variable-level associations,neglecting symptom-level interactions.This study applies n... Background:Amid the global rise in adolescent sedentary behavior and psychological distress,extant research has largely focused on variable-level associations,neglecting symptom-level interactions.This study applies network analysis,aims to delineate the interconnections among sedentary time,social support,social exclusion,and psychological distress in Chinese students,and to identify core and bridge symptoms to inform targeted interventions.Methods:This study employed a cross-sectional design to investigate the complex relationships among sedentary behavior,social support,social exclusion,and psychological distress among Chinese students.The research involved 459 high school and university students,using network analysis and mediation models to examine these relationships.Results:Network analysis revealed that the network had a density of 58.33%and an average edge weight of 0.11.In terms of centrality,stress had the highest expected influence(EI=1.135),acting as the core amplifier in the network.Sedentary behavior demonstrated the highest bridging expected influence,functioning as a critical bridge for cross-community transmission.Conversely,friend support showed the lowest bridging EI with a negative value,indicating its effectiveness in blocking cross-community diffusion and alleviating symptoms.Conclusion:With stress acting as the most influential“core engine”within the symptom network and sedentary behavior serving as the key“bridge”for cross-community transmission,interventions should first target stress to weaken the overall symptom cascade,followed by reducing sedentary behavior or enhancing friend support to disrupt cross-community pathways,thereby achieving a core-bridge dual blockade. 展开更多
关键词 Sedentary behavior psychological distress social support social exclusion network analysis
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Combined Fault Tree Analysis and Bayesian Network for Reliability Assessment of Marine Internal Combustion Engine
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作者 Ivana Jovanović Çağlar Karatuğ +1 位作者 Maja Perčić Nikola Vladimir 《哈尔滨工程大学学报(英文版)》 2026年第1期239-258,共20页
This paper investigates the reliability of internal marine combustion engines using an integrated approach that combines Fault Tree Analysis(FTA)and Bayesian Networks(BN).FTA provides a structured,top-down method for ... This paper investigates the reliability of internal marine combustion engines using an integrated approach that combines Fault Tree Analysis(FTA)and Bayesian Networks(BN).FTA provides a structured,top-down method for identifying critical failure modes and their root causes,while BN introduces flexibility in probabilistic reasoning,enabling dynamic updates based on new evidence.This dual methodology overcomes the limitations of static FTA models,offering a comprehensive framework for system reliability analysis.Critical failures,including External Leakage(ELU),Failure to Start(FTS),and Overheating(OHE),were identified as key risks.By incorporating redundancy into high-risk components such as pumps and batteries,the likelihood of these failures was significantly reduced.For instance,redundant pumps reduced the probability of ELU by 31.88%,while additional batteries decreased the occurrence of FTS by 36.45%.The results underscore the practical benefits of combining FTA and BN for enhancing system reliability,particularly in maritime applications where operational safety and efficiency are critical.This research provides valuable insights for maintenance planning and highlights the importance of redundancy in critical systems,especially as the industry transitions toward more autonomous vessels. 展开更多
关键词 Fault tree analysis Bayesian network RELIABILITY REDUNDANCY Internal combustion engine
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Cascading failure modeling and survivability analysis of weak-communication underwater unmanned swarm networks
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作者 Yifan Yuan Xiaohong Shen +3 位作者 Lin Sun Ke He Yongsheng Yan Haiyan Wang 《Defence Technology(防务技术)》 2026年第2期66-82,共17页
Cascading failures pose a serious threat to the survivability of underwater unmanned swarm networks(UUSNs),significantly limiting their service ability in collaborative missions such as military reconnaissance and env... Cascading failures pose a serious threat to the survivability of underwater unmanned swarm networks(UUSNs),significantly limiting their service ability in collaborative missions such as military reconnaissance and environmental monitoring.Existing failure models primarily focus on power grids and traffic systems,and don't address the unique challenges of weak-communication UUSNs.In UUSNs,cascading failure present a complex and dynamic process driven by the coupling of unstable acoustic channels,passive node drift,adversarial attacks,and network heterogeneity.To address these challenges,a directed weighted graph model of UUSNs is first developed,in which node positions are updated according to ocean-current-driven drift and link weights reflect the probability of successful acoustic transmission.Building on this UUSNs graph model,a cascading failure model is proposed that integrates a normal-failure-recovery state-cycle mechanism,multiple attack strategies,and routingbased load redistribution.Finally,under a five-level connectivity UUSNs scheme,simulations are conducted to analyze how dynamic topology,network load,node recovery delay,and attack modes jointly affect network survivability.The main findings are:(1)moderate node drift can improve survivability by activating weak links;(2)based-energy routing(BER)outperform based-depth routing(BDR)in harsh conditions;(3)node self-recovery time is critical to network survivability;(4)traditional degree-based critical node metrics are inadequate for weak-communication UUSNs.These results provide a theoretical foundation for designing robust survivability mechanisms in weak-communication UUSNs. 展开更多
关键词 Weak communication Underwater unmanned swarm networks(UUSNs) Link success probability Cascading failure Node self-recovery Survivability analysis
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基于FFT-BN模型的桥式起重机危险等级评估方法及系统
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作者 董青 李俊齐 +2 位作者 徐格宁 牛曙光 赵科渊 《工程设计学报》 北大核心 2026年第1期17-32,共16页
为了在设计源头对起重机所面临的危险实施有效防控,需着力解决现役桥式起重机存在的危险源辨识不全面、量化评估体系缺失及风险评估模型局限性等核心问题。为此,提出了基于FFT-BN(fuzzy fault tree-Bayesian network,模糊故障树-贝叶斯... 为了在设计源头对起重机所面临的危险实施有效防控,需着力解决现役桥式起重机存在的危险源辨识不全面、量化评估体系缺失及风险评估模型局限性等核心问题。为此,提出了基于FFT-BN(fuzzy fault tree-Bayesian network,模糊故障树-贝叶斯网络)模型的桥式起重机危险等级评估方法,并开发了专用型系统平台。聚焦桥式起重机的结构与零部件,通过系统性失效分析建立精细化的危险源辨识流程,以实现潜在风险的全覆盖;构建专家评价量化体系,设计标准的定量指标,并对危险源进行量化表征;提出基于FFT-BN的危险等级评估模型,结合FFT的失效逻辑分析能力与BN的不确定性推理优势,在提升模型精度与效率的同时实现复杂风险的动态量化评估与等级划分;开发专用型桥式起重机危险等级评估系统平台,实现了评估流程的智能化革新,大幅提升工程实际的应用效率。以在役QD40 t-22.5 m-9 m通用桥式起重机为例,验证了所提出方法的工程可行性与场景适用性,为设备本质安全提升与事故主动预防提供了有效的解决方案和工具支持。 展开更多
关键词 危险源辨识 危险源量化 模糊故障树-贝叶斯网络 桥式起重机 危险等级
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基于ISM-BN-FDNA的URT运营安全系统韧性评价
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作者 樊燕燕 牛瑞 《铁道科学与工程学报》 北大核心 2026年第2期888-901,共14页
为评估城市轨道交通(urban rail transit,URT)运营安全系统应对外部风险时的韧性能力(即抵抗干扰与快速恢复的能力),提出一种基于功能依赖网络分析(functional dependency network analysis,FDNA)与解释结构模型(interpretative structu... 为评估城市轨道交通(urban rail transit,URT)运营安全系统应对外部风险时的韧性能力(即抵抗干扰与快速恢复的能力),提出一种基于功能依赖网络分析(functional dependency network analysis,FDNA)与解释结构模型(interpretative structural modeling,ISM)的集成建模方法。在系统化分析影响因素的基础上,以ISM构建并优化URT运营安全系统的网络结构,通过FDNA刻画系统内部元素之间的动态影响关系,利用GeNIe软件中贝叶斯网络(Bayesian network,BN)的动态分析量化FDNA模型参数,构建URT运营安全系统韧性评价模型,最后采用BN的敏感性分析研究影响运营安全系统的关键因素和关键路径,确定需优先管控的关键环节,为提升系统韧性、优化安全管理提供科学依据。以兰州市URT为案例,将实际调研数据代入模型分析,研究结果表明:1)兰州URT运营安全系统具有较强抗干扰能力与恢复能力,整体韧性等级为“较高韧性”;2)敏感性分析表明,设备管理、供电、车辆、线路设施及自然环境因素是影响URT运营安全系统韧性的最关键因素,而机电设施、通信信号设施、制度、工作人员及乘客因素等为次关键因素。据此,建议兰州市URT运营公司应重点关注设备监测及气象预报预警信息,加强工作人员检修技能以及提升应急响应能力;其次,开展乘客安全宣传教育;同时,应完善应急管理机制和资源协调体系,以全面提升兰州市URT运营安全系统韧性。研究为URT运营安全系统的韧性提升提供了理论框架与实践路径,为进一步保障城市轨道交通系统安全高效运行提供参考。 展开更多
关键词 城市轨道交通(URT) 安全系统韧性 功能依赖网络分析(FDNA) 解释结构模型(ISM) 贝叶斯网络(bn)
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融合模糊DEMATEL-ISM-BN的城市燃气管网安全运行影响因素分析
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作者 汪宙峰 何宸锐 +2 位作者 邓斯尹 谢凯宇 刘威 《安全与环境工程》 北大核心 2026年第2期142-153,166,共13页
随着我国城市化进程加速推进,城市燃气管网规模持续扩张,系统复杂性显著提升,燃气管网安全运行面临严峻挑战。为探究城市燃气管网安全运行影响因素间的相互作用关系及影响机理,结合文献调研与典型事故案例,构建了包含18项指标的城市燃... 随着我国城市化进程加速推进,城市燃气管网规模持续扩张,系统复杂性显著提升,燃气管网安全运行面临严峻挑战。为探究城市燃气管网安全运行影响因素间的相互作用关系及影响机理,结合文献调研与典型事故案例,构建了包含18项指标的城市燃气管道安全运行影响因素指标体系,提出了融合模糊决策实验室分析法(decision making trial and evaluation laboratory, DEMATEL)、解释结构模型(interpretive structural modeling, ISM)和贝叶斯网络(Bayesian network, BN)的综合评估模型。该模型基于模糊DEMATEL构建影响因素间的因果图,量化因素间的关联;基于ISM模型实现风险系统的层级解构,揭示风险传导路径;基于GeNie软件平台建立BN模型,实现风险概率的评估与溯源。结果表明:在所构建的指标体系中,防腐层检测周期、阴极保护、地面沉降及服役年限等因素的风险敏感性最高;BN逆向推理揭示最大致因链为“阴极保护失效→检测周期不当→管网运行风险发生”,凸显腐蚀防控关键作用;敏感性分析表明接口质量、设计人员水平等微小扰动可引发显著的风险变化。通过典型事故案例验证发现,该模型具有良好的可靠性与工程适用性,可为燃气管网安全运行风险防控提供理论支撑。 展开更多
关键词 燃气管网 模糊DEMATEL-ISM-bn 解释结构模型(ISM) 贝叶斯网络
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基于ISM-BN方法的民航管制员胜任力研究
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作者 石荣 薛浩宇 +1 位作者 罗渝川 李秀易 《航空计算技术》 2026年第1期36-40,共5页
为深入探究民航管制员胜任力指标之间的内在联系,并为民航管制员选拔与培训提供理论依据,通过文献研究构建了包含16项指标的管制员胜任力体系,运用解释结构模型(ISM)定性分析各指标关系。之后,将解释结构模型拓扑结构映射至贝叶斯网络(B... 为深入探究民航管制员胜任力指标之间的内在联系,并为民航管制员选拔与培训提供理论依据,通过文献研究构建了包含16项指标的管制员胜任力体系,运用解释结构模型(ISM)定性分析各指标关系。之后,将解释结构模型拓扑结构映射至贝叶斯网络(BN),结合相似度聚合专家意见法获取贝叶斯网络参数,构建管制员胜任力贝叶斯网络模型。基于该模型,开展因果推理以分析当前胜任力现状,并通过诊断推理识别出3项核心能力与3项基础能力。通过ISM-BN方法对管制员胜任力进行了系统建模与分析,识别了关键胜任力指标,为胜任力研究引入新的方法。 展开更多
关键词 胜任力 民航管制员 解释结构模型 贝叶斯网络 相似度聚合 ISM-bn方法
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Exploring core symptoms and symptom clusters among patients with neuromyelitis optica spectrum disorder: A network analysis 被引量:2
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作者 Hao Liang Jiehan Chen +4 位作者 Lixin Wang Zhuyun Liu Haoyou Xu Min Zhao Xiaopei Zhang 《International Journal of Nursing Sciences》 2025年第2期152-160,共9页
Objectives To identify core symptoms and symptom clusters in patients with neuromyelitis optica spectrum disorder(NMOSD)by network analysis.Methods From October 10 to 30,2023,140 patients with NMOSD were selected to p... Objectives To identify core symptoms and symptom clusters in patients with neuromyelitis optica spectrum disorder(NMOSD)by network analysis.Methods From October 10 to 30,2023,140 patients with NMOSD were selected to participate in this online questionnaire survey.The survey tools included a general information questionnaire and a self-made NMOSD symptoms scale,which included the prevalence,severity,and distress of 29 symptoms.Cluster analysis was used to identify symptom clusters,and network analysis was used to analyze the symptom network and node characteristics and central indicators including strength centrality(r_(s)),closeness centrality(r_(c))and betweeness centrality(r_(b))were used to identify core symptoms and symptom clusters.Results The most common symptom was pain(65.7%),followed by paraesthesia(65.0%),fatigue(65.0%),easy awakening(63.6%).Regarding the burden level of symptoms,pain was the most burdensome symptom,followed by paraesthesia,easy awakening,fatigue,and difficulty falling asleep.Six clusters were identified:somatosensory,motor,visual,and memory symptom clusters,bladder and rectum symptom clusters,sleep symptoms clusters,and neuropsychological symptom clusters.Fatigue(r_(s)=12.39,r_(b)=68.00,r_(c)=0.02)was the most central and prominent bridge symptom,and motor symptom cluster(r_(s)=2.68,r_(c)=0.10)was the most central symptom cluster among the six clusters.Conclusions Our study demonstrated the necessity of symptom management targeting fatigue,pain,and motor symptom cluster in patients with NMOSD. 展开更多
关键词 Neuromyelitis optica spectrum disorder network analysis SYMPTOM Symptom clusters NURSING
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Possible Classifications of Social Network Addiction:A Latent Profile Analysis of Chinese College Students 被引量:1
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作者 Lin Luo Junfeng Yuan +4 位作者 Yanling Wang Rui Zhu HuilinXu Siyuan Bi Zhongge Zhang 《International Journal of Mental Health Promotion》 2025年第6期863-876,共14页
Objectives:SocialNetworkAddiction(SNA)is becoming increasingly prevalent among college students;however,there remains a lack of consensus regarding the measurement tools and their optimal cutoff score.This study aims ... Objectives:SocialNetworkAddiction(SNA)is becoming increasingly prevalent among college students;however,there remains a lack of consensus regarding the measurement tools and their optimal cutoff score.This study aims to validate the 21-item SocialNetwork Addiction Scale-Chinese(SNAS-C)in its Chinese version and to determine its optimal cutoff score for identifying potential SNA cases within the college student population.Methods:A crosssectional survey was conducted,recruiting 3387 college students.Latent profile analysis(LPA)and receiver operating characteristic(ROC)curve analysis were employed to establish the optimal cutoff score for the validated 21-item SNAS-C.Results:Three profile models were selected based on multiple statistical criteria,classifying participants into low-risk,moderate-risk,and high-risk groups.The highest-risk group was defined as“positive”for SNA,while the remaining groups were considered“negative”,serving as the reference standard for ROC analysis.The optimal cutoff score was determined to be 72(sensitivity:98.2%,specificity:96.86%),with an overall classification accuracy of 97.0%.The“positive”group reported significantly higher frequency of social network usage,greater digitalmedia dependence scores,and a higher incidence of network addiction.Conclusion:This study identified the optimal cutoff score for the SNAS-C as≥72,demonstrating high sensitivity,specificity,and diagnostic accuracy.This threshold effectively distinguishes between high-risk and low-risk SNA. 展开更多
关键词 Social network addiction mental health latent profile analysis(LPA) receiver operating characteristic(ROC) social networking addiction scale-Chinese(SNAS-C)
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基于FRAM-BN的施工安全突发事件应急管理能力评价
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作者 李知键 佘健俊 +2 位作者 路聪 郭子豪 周逸伦 《中国安全科学学报》 北大核心 2026年第2期199-208,共10页
为科学评估并提升建筑企业对突发安全事件的应急管理能力,针对既有静态评估难以刻画功能耦合且易受主观赋权影响的问题,提出一种融合定性分析与定量评估的综合模型。首先,基于应急管理全过程均衡理论,从准备与预防、监测与预警、响应与... 为科学评估并提升建筑企业对突发安全事件的应急管理能力,针对既有静态评估难以刻画功能耦合且易受主观赋权影响的问题,提出一种融合定性分析与定量评估的综合模型。首先,基于应急管理全过程均衡理论,从准备与预防、监测与预警、响应与处置、恢复与学习4个阶段,结合轨迹交叉理论与突变理论,提炼12个二级指标,建立完整的评价指标体系;其次,采用功能共振分析法(FRAM)识别各指标关键功能与耦合路径,结合改进K-shell算法与贝叶斯网络(BN)建立应评估模型;最后,在实际工程案例中进行应用,并通过专家复核与情景模拟验证其有效性。结果表明:所选建筑企业综合应急管理能力为81.682%,其应急机制能够有效响应并处置各类施工安全突发事件。其中,恢复与学习能力表现最佳(90.855%),而监测与预警能力相对薄弱(76.616%)。敏感性结果显示,专业队伍建设F_(3)与现场指挥决策F_(7)对综合能力贡献较为显著。 展开更多
关键词 功能共振分析法(FRAM) 贝叶斯网络(bn) 施工安全 突发事件 应急管理能力评价 改进K-shell算法
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Aspect-Level Sentiment Analysis of Bi-Graph Convolutional Networks Based on Enhanced Syntactic Structural Information
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作者 Junpeng Hu Yegang Li 《Journal of Computer and Communications》 2025年第1期72-89,共18页
Aspect-oriented sentiment analysis is a meticulous sentiment analysis task that aims to analyse the sentiment polarity of specific aspects. Most of the current research builds graph convolutional networks based on dep... Aspect-oriented sentiment analysis is a meticulous sentiment analysis task that aims to analyse the sentiment polarity of specific aspects. Most of the current research builds graph convolutional networks based on dependent syntactic trees, which improves the classification performance of the models to some extent. However, the technical limitations of dependent syntactic trees can introduce considerable noise into the model. Meanwhile, it is difficult for a single graph convolutional network to aggregate both semantic and syntactic structural information of nodes, which affects the final sentence classification. To cope with the above problems, this paper proposes a bi-channel graph convolutional network model. The model introduces a phrase structure tree and transforms it into a hierarchical phrase matrix. The adjacency matrix of the dependent syntactic tree and the hierarchical phrase matrix are combined as the initial matrix of the graph convolutional network to enhance the syntactic information. The semantic information feature representations of the sentences are obtained by the graph convolutional network with a multi-head attention mechanism and fused to achieve complementary learning of dual-channel features. Experimental results show that the model performs well and improves the accuracy of sentiment classification on three public benchmark datasets, namely Rest14, Lap14 and Twitter. 展开更多
关键词 Aspect-Level Sentiment analysis Sentiment Knowledge Multi-Head Attention Mechanism Graph Convolutional networks
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基于ISM-BN与知识图谱的煤矿瓦斯灾害风险预警研究
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作者 祝令锦 蔡春城 +3 位作者 尹慧敏 徐志奇 闫相宁 高洪波 《煤炭工程》 北大核心 2026年第3期191-197,共7页
为解决当前煤矿瓦斯灾害预警多侧重于分级预警,致灾因素及相关法律法规、预防措施未能有效关联,导致灾害预警信息内容繁杂、碎片化严重、呈现形式单一,难以形成系统完善的灾害预警防治体系的问题,提出一种基于ISM-BN与知识图谱融合的煤... 为解决当前煤矿瓦斯灾害预警多侧重于分级预警,致灾因素及相关法律法规、预防措施未能有效关联,导致灾害预警信息内容繁杂、碎片化严重、呈现形式单一,难以形成系统完善的灾害预警防治体系的问题,提出一种基于ISM-BN与知识图谱融合的煤矿瓦斯灾害风险预警方法。首先,利用解释结构模型(ISM)与贝叶斯网络(BN)构建煤矿瓦斯灾害指标体系与风险预警模型;其次,以BN网络结构作为瓦斯灾害知识图谱的模式层,结合瓦斯防治领域的法律法规及规章制度进行知识实体抽取,完成煤矿瓦斯灾害知识图谱的构建。最后,将该模型在山西某矿进行工程应用,依据现场预警指标中的异常现象,对关键致因链路实体进行赋值,计算灾害发生概率,并通过图谱检索致灾路径上各因素的规范要求,形成针对性防治方案,切断致灾链路传播。应用结果表明,该方法可显著降低灾害发生概率,实现对煤矿瓦斯事故的有效预防。 展开更多
关键词 瓦斯灾害 解释结构模型 贝叶斯网络 防治体系 智能防控 致因链
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Optimization of Park System in Haidian District,Beijing Based on Social Network Analysis
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作者 WU Haotian CAO Ying 《Journal of Landscape Research》 2025年第2期11-16,共6页
The construction of“park cities”requires a systematic thinking to coordinate the networked development of park system and break through the limitation of emphasizing scale and grade and neglecting dynamic correlatio... The construction of“park cities”requires a systematic thinking to coordinate the networked development of park system and break through the limitation of emphasizing scale and grade and neglecting dynamic correlation in traditional planning.Taking Haidian District of Beijing as an example,the social network analysis method is introduced to construct the network model of park green spaces.Through indicators such as clustering coefficient,network density and node centrality,the characteristics of its spatial structure and hierarchical relationship are analyzed.It is found that the network integrity presents the characteristics of“highly local concentration and global fragmentation”,fragmented park green space network and missing spatial connection,isolated clusters and collaborative failure,as well as the spatial mismatch between population and resource supply and demand.Hierarchical issues include“structural imbalance and functional disorder”,disorder between network hierarchy and park level,misalignment of functional hierarchy leading to weakened network risk resistance capacity,and a relatively dense distribution of core nodes,etc.In response to the above problems,a multi-level spatial intervention strategy should be adopted to solve the overall problem of the network.Meanwhile,it is needed to clarify the positioning of a park itself and improve the hierarchical system,so as to construct a multi-level and multi-scale park green space network,contribute to the construction of a park city,and provide residents with more diverse activity venues. 展开更多
关键词 Urban park system Social network analysis Haidian District BEIJING Park network structure
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Distribution of Traditional Chinese Medicine Syndromes and Syndrome Elements of Chronic Heart Failure Based on Network Analysis and Hierarchical Cluster Analysis
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作者 ZHOU Yi HUANG Pinxian +1 位作者 LI Xiaoqian HE Jiancheng 《Chinese Medicine and Culture》 2025年第1期50-60,共11页
Traditional Chinese medicine(TCM)has played a significant role in the prevention and treatment of chronic heart failure(CHF).To study TCM diagnosis of CHF,a total of 278 Chinese clinical research articles on the study... Traditional Chinese medicine(TCM)has played a significant role in the prevention and treatment of chronic heart failure(CHF).To study TCM diagnosis of CHF,a total of 278 Chinese clinical research articles on the study of CHF syndromes in recent 40 years retrieved from Web of Science,Scopus,Pub Med,Embase,CNKI,Wanfang Data,Cq VIP,and Sino Med.According to cumulative frequency analysis,network analysis,and hierarchical cluster analysis,the study found the distribution of CHF syndromes was syndrome of qi deficiency with blood stasis,syndrome of qi and yin deficiency,syndrome of yang deficiency with water flooding,syndrome of heart blood stasis obstruction,syndrome of turbid phlegm,and syndrome of collapse due to primordial yang deficiency.The syndrome elements on location of illness were heart,kidney,lung,and spleen.The syndrome elements on nature of illness were qi deficiency,blood stasis,yang deficiency,yin deficiency,water retention,and turbid phlegm.These findings can provide reference to the research on diagnosis and treatment of CHF,and contribute to the study on syndrome standardization and objective research of TCM diagnosis. 展开更多
关键词 Chronic heart failure Traditional Chinese medicine Hierarchical cluster analysis network analysis SYNDROME Syndrome differentiation Syndrome element
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基于BN-MC的极端天气下城市新型电力系统风险评估
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作者 刘坤琦 杨涓 +3 位作者 李子依 李鹏 吴建松 刘畅 《中国安全科学学报》 北大核心 2026年第1期157-166,共10页
为缓解极端天气频发对新型电力系统的源、网、荷侧设备构成的重大安全风险,提出一种面向极端天气的城市新型电力系统风险评估模型。首先,基于灾害理论辨识城市新型电力系统的风险因素,并借助解释结构模型(ISM)梳理风险因素间的影响关系... 为缓解极端天气频发对新型电力系统的源、网、荷侧设备构成的重大安全风险,提出一种面向极端天气的城市新型电力系统风险评估模型。首先,基于灾害理论辨识城市新型电力系统的风险因素,并借助解释结构模型(ISM)梳理风险因素间的影响关系;然后,将灾害链拓扑结构映射成为贝叶斯网络(BN),并通过模糊综合评价和事故统计确定各风险因素节点的先验概率,运用敏感性分析和情景分析得出城市新型电力系统事故关键风险节点和多灾害耦合事故后果;最后,借助蒙特卡罗(MC)模拟,对敏感性较高的“杆塔”节点开展运行优化分析。结果表明:BN-MC耦合模型可有效实现城市新型电力系统极端天气风险的量化评估与提升分析,多重极端天气叠加时,光伏发电机组故障概率高达60%,且强风是其故障的关键驱动因素;其次,提升杆塔抗风等级对降低其失效概率效果显著,在实时风速36 km/h时,抗风等级从35 km/h提升至40 km/h,可使失效概率下降59.39%,且该效果呈现非线性特征,低风速区段的风险概率降幅大于中风速区段。 展开更多
关键词 贝叶斯网络(bn) 蒙特卡罗(MC) 极端天气 城市新型电力系统 风险评估 解释结构模型(ISM)
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基于FTA-BN的塔吊安全事故致因分析
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作者 王涵 申建红 +1 位作者 张茜 郭明慧 《山东理工大学学报(自然科学版)》 2026年第3期1-8,共8页
针对塔吊安全事故频发的现状,通过塔吊安全事故数据探究事故关键致因因素,提出一种基于故障树-贝叶斯网络(FTA-BN)的系统性风险分析方法,从人、设备、管理、环境四大方面识别事故致因。通过扎根理论对塔吊事故数据进行质性分析,提取了2... 针对塔吊安全事故频发的现状,通过塔吊安全事故数据探究事故关键致因因素,提出一种基于故障树-贝叶斯网络(FTA-BN)的系统性风险分析方法,从人、设备、管理、环境四大方面识别事故致因。通过扎根理论对塔吊事故数据进行质性分析,提取了29个致因因素构建故障树模型,进一步将其映射为贝叶斯网络模型,结合逆向推理与敏感性分析进行定量评估。结果表明,安全管理制度不完善、未按照专项施工方案实施、塔吊结构/部件故障、违规操作、政府/相关单位监管不到位、安全意识淡薄、交叉作业、未按要求进行设备维保、断绳脱钩这9个关键致因对事故风险影响显著,其中管理因素是系统性风险的核心。 展开更多
关键词 塔吊安全 贝叶斯网络 故障树 事故致因分析
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Drivers influencing the adoption of cryptocurrency: a social network analysis approach
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作者 K.Kajol Srijanani Devarakonda +1 位作者 Ranjit Singh H.Kent Baker 《Financial Innovation》 2025年第1期2103-2127,共25页
Cryptocurrency has gained popularity as a potential new global payment method.It has the potential to be faster,cheaper,and more secure than existing payment networks,making it a game-changer in the global economy.How... Cryptocurrency has gained popularity as a potential new global payment method.It has the potential to be faster,cheaper,and more secure than existing payment networks,making it a game-changer in the global economy.However,more research is needed to identify the factors driving cryptocurrency adoption and understand its impact.We use social network analysis(SNA)to identify the influencing factors and reveal the impact of each on cryptocurrency adoption.Our analysis initially revealed 44 influential factors,which were later reduced to 25 factors,each exerting a different influence.Based on the SNA,we classify these factors into highly,moderately,and least influential categories.Discomfort and optimism are the most influential determinants of adoption.Moderately influential factors include trust,risk,relative advantage,social influence,and perceived behavioral control.Price/value,facilitating conditions,compatibility,and usefulness are the least influential.The factors affecting cryptocurrency adoption are interdependent.Our findings can help policymakers understand the factors influencing cryptocurrency adoption and aid in developing appropriate legal frameworks for cryptocurrency use. 展开更多
关键词 Cryptocurrency Social network analysis(SNA) Systematic review Delphi technique
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