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Functional evidential reasoning model(FERM)-A new systematic approach for exploring hazardous chemical operational accidents under uncertainty
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作者 Qianlin Wang Jiaqi Han +6 位作者 Lei Cheng Feng Wang Yiming Chen Zhan Dou Bing Zhang Feng Chen Guoan Yang 《Chinese Journal of Chemical Engineering》 2025年第5期255-269,共15页
This paper proposed a new systematic approach-functional evidential reasoning model(FERM) for exploring hazardous chemical operational accidents under uncertainty. First, FERM was introduced to identify various causal... This paper proposed a new systematic approach-functional evidential reasoning model(FERM) for exploring hazardous chemical operational accidents under uncertainty. First, FERM was introduced to identify various causal factors and their performance changes in hazardous chemical operational accidents, along with determining the functional failure link relationships. Subsequently, FERM was employed to elucidate both qualitative and quantitative operational accident information within a unified framework, which could be regarded as the input of information fusion to obtain the fuzzy belief distribution of each cause factor. Finally, the derived risk values of the causal factors were ranked while constructing multi-level accident causation chains to unveil the weak links in system functionality and the primary roots of operational accidents. Using the specific case of the “1·15” major explosion and fire accident at Liaoning Panjin Haoye Chemical Co., Ltd., seven causal factors and their corresponding performance changes were identified. Additionally, five accident causation chains were uncovered based on the fuzzy joint distribution of the functional assessment level(FAL) and reliability distribution(RD),revealing an overall increase in risk along the accident evolution path. The research findings demonstrated that FERM enabled the effective characterization, rational quantification and accurate analysis of the inherent uncertainties in hazardous chemical operational accident risks from a systemic perspective. 展开更多
关键词 Functional evidential reasoning model (FERM) Accident causation analysis Operational accidents Hazardous chemical UNCERTAINTY
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基于Reason模型的医学院校实验室安全风险防控 被引量:1
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作者 王雪 台红祥 +1 位作者 王华 李军 《化工管理》 2025年第26期94-97,共4页
有些医学院校实验室存在诸多安全风险,关乎师生生命健康及学校正常教学科研秩序。文章引入Reason模型,深入剖析医学院校实验室安全风险防控问题,从组织因素、不安全的监督、不安全行为的前提条件及不安全行为四个层面识别风险因素,并提... 有些医学院校实验室存在诸多安全风险,关乎师生生命健康及学校正常教学科研秩序。文章引入Reason模型,深入剖析医学院校实验室安全风险防控问题,从组织因素、不安全的监督、不安全行为的前提条件及不安全行为四个层面识别风险因素,并提出针对性防控策略,旨在提升医学院校实验室安全管理水平,降低安全事故发生概率。 展开更多
关键词 reason模型 医学院校 实验室安全 风险防控
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Progress in Neural NLP:Modeling,Learning,and Reasoning 被引量:19
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作者 Ming Zhou Nan Duan +1 位作者 Shujie Liu Heung-Yeung Shum 《Engineering》 SCIE EI 2020年第3期275-290,共16页
Natural language processing(NLP)is a subfield of artificial intelligence that focuses on enabling computers to understand and process human languages.In the last five years,we have witnessed the rapid development of N... Natural language processing(NLP)is a subfield of artificial intelligence that focuses on enabling computers to understand and process human languages.In the last five years,we have witnessed the rapid development of NLP in tasks such as machine translation,question-answering,and machine reading comprehension based on deep learning and an enormous volume of annotated and unannotated data.In this paper,we will review the latest progress in the neural network-based NLP framework(neural NLP)from three perspectives:modeling,learning,and reasoning.In the modeling section,we will describe several fundamental neural network-based modeling paradigms,such as word embedding,sentence embedding,and sequence-to-sequence modeling,which are widely used in modern NLP engines.In the learning section,we will introduce widely used learning methods for NLP models,including supervised,semi-supervised,and unsupervised learning;multitask learning;transfer learning;and active learning.We view reasoning as a new and exciting direction for neural NLP,but it has yet to be well addressed.In the reasoning section,we will review reasoning mechanisms,including the knowledge,existing non-neural inference methods,and new neural inference methods.We emphasize the importance of reasoning in this paper because it is important for building interpretable and knowledgedriven neural NLP models to handle complex tasks.At the end of this paper,we will briefly outline our thoughts on the future directions of neural NLP. 展开更多
关键词 Natural language processing Deep learning modeling learning and reasoning
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Model for Bidding and Tendering with Bill of Quantities Based on Bid-Winning Estimate at Reasonable Low Price 被引量:2
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作者 宋吉荣 钟胜 郭耀煌 《Journal of Southwest Jiaotong University(English Edition)》 2006年第4期387-393,共7页
The possibility and rationality of introducing an bid-winning estimate based on a reasonable low price into construction bidding mode with bill of quantities were analyzed by setting up a model for bidding and tenderi... The possibility and rationality of introducing an bid-winning estimate based on a reasonable low price into construction bidding mode with bill of quantities were analyzed by setting up a model for bidding and tendering, and the functions of the estimate of reasonable low price in the bidding were revealed. On this basis, a new bidding mode of the project with bill of quantities was pro- posed. The application of the new mode will be advantageous to the promotion of the bill of quantities in China. 展开更多
关键词 Bill of quantifies reasonable low price model for bidding and tendering
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A Knowledge-reuse Based Intelligent Reasoning Model for Worsted Process Optimization
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作者 吕志军 项前 +1 位作者 殷祥刚 杨建国 《Journal of Donghua University(English Edition)》 EI CAS 2006年第1期4-7,共4页
The textile process planning is a knowledge reuse process in nature, which depends on the expert’s knowledge and experience. It seems to be very difficult to build up an integral mathematical model to optimize hundre... The textile process planning is a knowledge reuse process in nature, which depends on the expert’s knowledge and experience. It seems to be very difficult to build up an integral mathematical model to optimize hundreds of the processing parameters. In fact, the existing process cases which were recorded to ensure the ability to trace production steps can also be used to optimize the process itself. This paper presents a novel knowledge-reuse based hybrid intelligent reasoning model (HIRM) for worsted process optimization. The model architecture and reasoning mechanism are respectively described. An applied case with HIRM is given to demonstrate that the best process decision can be made, and important processing parameters such as for raw material optimized. 展开更多
关键词 knowledge reuse hybrid intelligent reasoning model CBR ANN wool textile process
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CONVERSE REASONING FOR FULL DEPRESSION-FEATURE MODEL AND PROCESS
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作者 Shen XiaohongLiu XuanYu FangfangZhang LeiFeng TaoCollege of Mechanical Engineering and Automation,Beijing Technology and Business University, Beijing 100037, China 《Chinese Journal of Mechanical Engineering》 SCIE EI CAS CSCD 2003年第2期160-162,共3页
A new approach, namely, 'defining protrusion-feature withdepression-parameter' is advanced, which focuses on the shortcomings of protrusion-featurealteration method; The full depression-feature model is built ... A new approach, namely, 'defining protrusion-feature withdepression-parameter' is advanced, which focuses on the shortcomings of protrusion-featurealteration method; The full depression-feature model is built up, and a basic converse reasoningiterative algorithm for machining process is given. The detailed examination has been implemented onthe feature-based modeling system for light industry product (QJFMS) and the converse reasoning onfixture-based machining process is achieved. 展开更多
关键词 protrusion-feature full depression-feature model reasoning iterativealgorithm
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Flatness predictive model based on T-S cloud reasoning network implemented by DSP 被引量:4
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作者 ZHANG Xiu-ling GAO Wu-yang +1 位作者 LAI Yong-jin CHENG Yan-tao 《Journal of Central South University》 SCIE EI CAS CSCD 2017年第10期2222-2230,共9页
The accuracy of present flatness predictive method is limited and it just belongs to software simulation. In order to improve it, a novel flatness predictive model via T-S cloud reasoning network implemented by digita... The accuracy of present flatness predictive method is limited and it just belongs to software simulation. In order to improve it, a novel flatness predictive model via T-S cloud reasoning network implemented by digital signal processor(DSP) is proposed. First, the combination of genetic algorithm(GA) and simulated annealing algorithm(SAA) is put forward, called GA-SA algorithm, which can make full use of the global search ability of GA and local search ability of SA. Later, based on T-S cloud reasoning neural network, flatness predictive model is designed in DSP. And it is applied to 900 HC reversible cold rolling mill. Experimental results demonstrate that the flatness predictive model via T-S cloud reasoning network can run on the hardware DSP TMS320 F2812 with high accuracy and robustness by using GA-SA algorithm to optimize the model parameter. 展开更多
关键词 T-S CLOUD reasoning neural NETWORK CLOUD model FLATNESS predictive model hardware implementation digital signal PROCESSOR genetic ALGORITHM and simulated annealing ALGORITHM (GA-SA)
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Universal triple I fuzzy reasoning algorithm of function model based on quotient space 被引量:1
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作者 Lu Qiang Shen Guanting and Liu Xiaoping 《Computer Aided Drafting,Design and Manufacturing》 2012年第1期49-60,共12页
Aiming at the deficiencies of analysis capacity from different levels and fuzzy treating method in product function modeling of conceptual design, the theory of quotient space and universal triple I fuzzy reasoning me... Aiming at the deficiencies of analysis capacity from different levels and fuzzy treating method in product function modeling of conceptual design, the theory of quotient space and universal triple I fuzzy reasoning method are introduced, and then the function modeling algorithm based on the universal triple I fuzzy reasoning method is proposed. Firstly, the product function granular model based on the quotient space theory is built, with its function granular representation and computing rules defined at the same time. Secondly, in order to quickly achieve function granular model from function requirement, the function modeling method based on universal triple I fuzzy reasoning is put forward. Within the fuzzy reasoning of universal triple I method, the small-distance-activating method is proposed as the kernel of fuzzy reasoning; how to change function requirements to fuzzy ones, fuzzy computing methods, and strategy of fuzzy reasoning are respectively investigated as well; the function modeling algorithm based on the universal triple I fuzzy reasoning method is achieved. Lastly, the validity of the function granular model and function modeling algorithm is validated. Through our method, the reasonable function granular model can be quickly achieved from function requirements, and the fuzzy character of conceptual design can be well handled, which greatly improves conceptual design. 展开更多
关键词 conceptual design function modeling fuzzy reasoning universal triple I method
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Bayesian Network Model of Product Information Diffusion and Reasoning of Influence
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作者 Xuehua Sun Shaojie Hou +2 位作者 Ning Cai Wenxiu Ma Surui Zhao 《Journal of Data Analysis and Information Processing》 2020年第4期267-281,共15页
Information diffusion on social media has become a key strategy in people’s daily interactions. This paper studies consumers’ participation in the product information diffusion, and analyzes the complexity of inform... Information diffusion on social media has become a key strategy in people’s daily interactions. This paper studies consumers’ participation in the product information diffusion, and analyzes the complexity of information diffusion which is affected by many factors. Prior investigations of information diffusion have primarily focused on the composition of diffusion networks with independent factors and the intricacy of the process has not been completely evaluated. The majority of prior investigations have focused on strategies and the moving forces in social media processes and the determination of influential seed nodes, with few evaluations conducted about the factors affecting consumers’ choices in information diffusion. In this study, a Bayesian network model of product information diffusion was created to examine the links between factors and consumer deportment. It revealed how those factors had an impact on each other and on consumer deportment choice. The innovation of the thesis is reflected in the exploration and analysis of the specific communication path of product information diffusion, which provides a better marketing idea and practical method for the development of mobile e-commerce. The research findings can help identify the quantitative relationships between the factors affecting the process of product information diffusion and user behavior. 展开更多
关键词 Product Information Diffusion Bayesian Network model Influence reasoning Consumer Behaviors Clique Tree
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基于REASON模型的煤矿企业安全事故成因组态分析
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作者 谭旭红 田硕 吴佳莹 《煤炭经济研究》 2025年第11期227-236,共10页
为探究煤矿安全事故发生的逻辑链条,选取40起煤矿安全事故案例为研究样本,采用扎根理论识别事故成因范畴,并借助瑞士奶酪(REASON)模型,从组织影响、不安全的监督、不安全的前提和不安全的行为4个维度构建条件变量,运用模糊集定性比较分... 为探究煤矿安全事故发生的逻辑链条,选取40起煤矿安全事故案例为研究样本,采用扎根理论识别事故成因范畴,并借助瑞士奶酪(REASON)模型,从组织影响、不安全的监督、不安全的前提和不安全的行为4个维度构建条件变量,运用模糊集定性比较分析法开展组态分析,识别导致煤矿安全事故发生的核心条件。研究结果揭示,单一条件变量在解释煤矿突发事件时,其解释效力较为薄弱,然而通过组态分析整合条件变量后,其对结果的解释能力显著提升。通过组态分析,共识别出8条关键路径,依据各组态路径中的核心条件,可总结为监管与环境联合型、工作环境主导型、安全培训优先型和安全文化驱动型4种类型,并根据每一种煤矿安全事故成因类型提出相应的建议,以期能够减少煤矿安全事故发生的概率。 展开更多
关键词 煤矿安全事故 瑞士奶酪(reason)模型 模糊集定性比较分析法 扎根理论
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基于案例推理的大型船舶靠泊辅助决策研究
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作者 柯冉绚 刘嘉润 方昊 《中国航海》 北大核心 2026年第1期56-65,共10页
文章针对大型船舶靠泊过程中的复杂性与不确定性问题,构建一种基于案例推理(CBR)的辅助决策模型。该模型基于案例推理技术结合云模型和BP神经网络,综合考虑船舶特性、气象水文条件、港口因素等多维属性,建立包含基本信息域、特征属性域... 文章针对大型船舶靠泊过程中的复杂性与不确定性问题,构建一种基于案例推理(CBR)的辅助决策模型。该模型基于案例推理技术结合云模型和BP神经网络,综合考虑船舶特性、气象水文条件、港口因素等多维属性,建立包含基本信息域、特征属性域和辅助决策域的案例框架。通过专家评分与云模型相结合的方式,对专家评价结果的随机性和模糊性进行处理,优化案例属性权重的分配,并利用BP神经网络实现案例重用与决策预测,从而减小人工干预的主观性误差。通过收集深圳港的赤湾和蛇口集装箱码头的靠泊案例进行实例验证,初步验证模型可以为引航员提供相关辅助的决策支持,拓展人工智能技术在海事应用的新场景,也为无人船智能靠泊规划提供新思路。 展开更多
关键词 案例推理 云模型 BP神经网络 靠泊辅助决策
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变电运行人因事故分析的拟REASON模型 被引量:16
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作者 梁广 张勇军 +1 位作者 黎浩 凌毅 《继电器》 CSCD 北大核心 2008年第3期23-26,共4页
REASON模型是航空事故调查与分析的理论模型之一,引入进来并建立了变电运行人因事故分析的拟REASON模型,提出了事故链上的六个要素,包括环境、信息、组织、危险点、监护人、操作人。分别针对这六个要素提出防止变电运行人因事故发生的... REASON模型是航空事故调查与分析的理论模型之一,引入进来并建立了变电运行人因事故分析的拟REASON模型,提出了事故链上的六个要素,包括环境、信息、组织、危险点、监护人、操作人。分别针对这六个要素提出防止变电运行人因事故发生的具体措施,并指出各方面安全措施的协调是追求"事故零目标"的必然要求。所提模型对变电运行人因事故分析具有重要的指导意义。 展开更多
关键词 变电运行 人因事故 reason模型
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基于FTA-Reason的施工作业高空坠落风险预控研究 被引量:16
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作者 徐影 杨高升 +1 位作者 夏柠萍 郑晓利 《中国安全生产科学技术》 CAS CSCD 北大核心 2015年第7期171-177,共7页
为了对施工作业中高空坠落风险进行预控,采用故障树法对施工作业高空坠落事故进行了故障树的构建、分析,继而通过对经典Reason模型进行改造,建立了施工作业高空坠落事故的预控模型,包括组织因素、安全监督、操作条件、安全行为的前提以... 为了对施工作业中高空坠落风险进行预控,采用故障树法对施工作业高空坠落事故进行了故障树的构建、分析,继而通过对经典Reason模型进行改造,建立了施工作业高空坠落事故的预控模型,包括组织因素、安全监督、操作条件、安全行为的前提以及安全行为5个防御层次。在风险预控的过程中,通过运用建立的施工作业高空坠落风险模型,可以对施工作业中的高空坠落风险进行针对性地预控,为施工安全风险管理提供参考。 展开更多
关键词 故障树法 reason模型 高空坠落 施工作业
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Reason模型在空中交通管制中的应用 被引量:36
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作者 霍志勤 谢孜楠 《中国安全科学学报》 CAS CSCD 2008年第1期154-159,共6页
指出了Reason模型及人的因素分析与分类系统的不足,提出对Reason模型进行修正的思路;结合中国民航业的实际情况,构建了空中交通管制不安全事件的分析框架;对防御系统失效、不安全行为、不安全行为的条件、管理失效4个层次的缺陷进行了论... 指出了Reason模型及人的因素分析与分类系统的不足,提出对Reason模型进行修正的思路;结合中国民航业的实际情况,构建了空中交通管制不安全事件的分析框架;对防御系统失效、不安全行为、不安全行为的条件、管理失效4个层次的缺陷进行了论述,并给予详细的实证分析。研究有助于调查分析民航空管行业不安全事件中的原因以及为空管安全管理中的危险识别提供依据。 展开更多
关键词 reason模型 空中交通管制 SHEL模型 事故 事故征候 安全
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基于Reason模型的航空器事故调查分析软件设计 被引量:5
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作者 耿增显 赵嶷飞 +1 位作者 孟令航 谢逸哲 《中国民航大学学报》 CAS 2013年第3期6-9,共4页
通过对航空器事故进行分析与研究,从而提出相应的改进措施,对于减少飞行事故、保障飞行安全具有重要意义。在现有航空器事故分析的基础上,提出了基于Reason模型的航空器事故调查分析软件设计。在分析Reason模型基本概念的基础上,详细介... 通过对航空器事故进行分析与研究,从而提出相应的改进措施,对于减少飞行事故、保障飞行安全具有重要意义。在现有航空器事故分析的基础上,提出了基于Reason模型的航空器事故调查分析软件设计。在分析Reason模型基本概念的基础上,详细介绍了该软件的系统结构、软件的界面和相应的操作步骤与方法,并结合实际的案例介绍了该软件在分析航空器事故调查方面的优势。该软件对于调查分析民航业不安全事件中的人为因素具有一定的借鉴作用。 展开更多
关键词 航空器 事故 reason模型 软件设计
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Modeling and Characterization of Vegetation, Aquatic and Mineral Surfaces Using the Theory of Plausible and Paradoxical Reasoning from Satellite Images: Case of the Toumodi-Yamoussoukro-Tiébissou Zone in V Baoulé(Côte d’Ivoire)
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作者 Jean-Claude Okaingni Sié Ouattara +3 位作者 Adles Kouassi Wognin J.Vangah Aubin K.Koffi Alain Clement 《Open Journal of Applied Sciences》 2017年第10期520-536,共17页
In this paper, the theory of plausible and paradoxical reasoning of Dezert- Smarandache (DSmT) is used to take into account the paradoxical charac-ter through the intersections of vegetation, aquatic and mineral surfa... In this paper, the theory of plausible and paradoxical reasoning of Dezert- Smarandache (DSmT) is used to take into account the paradoxical charac-ter through the intersections of vegetation, aquatic and mineral surfaces. In order to do this, we developed a classification model of pixels by aggregating information using the DSmT theory based on the PCR5 rule using the &cap;NDVI, &cap;MNDWI and &cap;NDBaI spectral indices obtained from the ASTER satellite images. On the qualitative level, the model produced three simple classes for certain knowledge (E, V, M) and eight composite classes including two union classes characterizing partial ignorance ({E,V}, {M,V}) and six classes of intersection of which three classes of simple intersection (E&cap;V, M&cap;V, E&cap;M) and three classes of composite intersection (E&cap;{M,V}, M&cap;{E,V}, V&cap;{E,M}), which represent paradoxes. This model was validated with an average rate of 93.34% for the well-classified pixels and a compliance rate of the entities in the field of 96.37%. Thus, the model 1 retained provides 84.98% for the simple classes against 15.02% for the composite classes. 展开更多
关键词 Theory of Plausible and PARADOXICAL reasonING PCR5 Rule ASTER Satellite Images NDVI MNDWI NDBaI modelING Classification
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REASON模型在航空维修事故调查中的应用 被引量:8
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作者 陈农田 谭鑫 李瑞 《交通信息与安全》 2012年第2期96-98,126,共4页
分析和运用Reason模型,从系统安全角度对一起典型航空维修事故案例,按照事件链因果逻辑展开调查分析,构建出事故致因分析模型。
关键词 reason模型 航空维修 航空安全 事故调查
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基于生成模型的开放域关系推理方法
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作者 刘井平 岑哲栋 +3 位作者 张维彦 阮彤 王超 王昊奋 《计算机研究与发展》 北大核心 2026年第2期378-392,共15页
关系推理是自然语言处理中的一项重要任务,旨在预测2个或多个实体之间可能存在的语义关系,推理过程通常为从已知的实体间关系中推导出新的关系,得到的结果可以在多种下游任务如知识图谱补全、关系抽取、常识问答中得到广泛应用。以往的... 关系推理是自然语言处理中的一项重要任务,旨在预测2个或多个实体之间可能存在的语义关系,推理过程通常为从已知的实体间关系中推导出新的关系,得到的结果可以在多种下游任务如知识图谱补全、关系抽取、常识问答中得到广泛应用。以往的研究主要存在2个局限性:首先,以往的方法主要集中于封闭域,关系类型都是已经事先定义好的,难以扩展;其次,即便存在少量针对开放域的关系推理方法,也仅聚焦于单跳推理,难以满足更复杂的场景需求。因此,定义了开放域的2跳关系推理任务,并构建了一个用于评估该任务的数据集。面向该任务,提出了一种基于生成模型的开放域关系推理方法ORANGE,包括实体生成、关系生成、结果聚合3个模块。实验结果表明,ORANGE相比现有主流关系推理方法在平均得分上提高了10.36%。此外,当ORANGE的关系推理框架与大语言模型结合使用时,相较于传统的上下文学习提示策略,平均得分提高了9.58%。 展开更多
关键词 关系推理 生成模型 开放域 多跳推理 大语言模型
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食品安全事件的影响因素及治理路径——基于REASON模型的QCA分析 被引量:17
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作者 徐国冲 李威瑢 《管理学刊》 CSSCI 北大核心 2021年第4期109-126,共18页
本文基于REASON模型,构造“监管主体、监管过程、监管环境、监管对象”的监管闭环,探寻食品安全事件发生的逻辑链条。首先,建立“环节分布—责任主体”的组合分析框架,从9989个食品安全事件统计分析入手,提炼出8个高发节点。其次,筛选... 本文基于REASON模型,构造“监管主体、监管过程、监管环境、监管对象”的监管闭环,探寻食品安全事件发生的逻辑链条。首先,建立“环节分布—责任主体”的组合分析框架,从9989个食品安全事件统计分析入手,提炼出8个高发节点。其次,筛选出60个案例进行模糊集定性比较分析,得到8个食品安全事件的影响因素——日常监管、多元主体参与、检测水平、质量控制、宣传教育、风险控制、企业或个人行为、环节分布安全隐患,验证了“不安全的行为”是食品安全事件的直接因素。再次,通过条件变量的组合探究路径,从影响因素及监管的维度入手,根据“行为—原因—实践”的逻辑链条总结食品安全治理的5条路径,回答“如何监管”及“监管谁”的问题。 展开更多
关键词 食品安全 reason模型 影响因素 QCA
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基于多粒度知识的无监督常识问答
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作者 杨陟卓 王年楷 《中北大学学报(自然科学版)》 2026年第1期62-70,共9页
常识性问答(Commonsense Question Answering,CQA)是一项比传统问答任务更具挑战性的自然语言理解任务,它要求模型具备更强的常识推理能力。目前,基于无监督方法的常识问答在若干数据集上取得了较好的性能,但这些方法难以充分挖掘和利... 常识性问答(Commonsense Question Answering,CQA)是一项比传统问答任务更具挑战性的自然语言理解任务,它要求模型具备更强的常识推理能力。目前,基于无监督方法的常识问答在若干数据集上取得了较好的性能,但这些方法难以充分挖掘和利用常识知识,限制了模型在复杂场景下的推理能力。针对这一问题,本文提出了一种新颖的无监督常识问答方法,其核心优势在于通过无监督学习有效整合外部常识知识,从而提升模型的泛化能力和推理深度。首先,该方法对问题进行分类,区分科学常识问题与日常事件问题;随后,根据问题类型生成相应的知识前缀;接着,将知识前缀输入预训练语言模型,通过大模型提示生成多粒度的常识知识;最后,利用多粒度知识辅助问答推理模块进行答案生成。采用无监督方法不仅可以减少对标注数据的依赖,还能更好地适应多样化的常识场景,体现了其在实际应用中的灵活性和普适性。实验结果表明,所提方法在相关数据集上显著优于基线模型,验证了其在无监督常识问答任务中的正确性和合理性。 展开更多
关键词 常识问答 大模型提示 知识生成 答案推理
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