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Narrative nursing for negative emotions in patients with acute pancreatitis:Based on model construction and application
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作者 Ling-Jun Zhou Juan Wu +4 位作者 Wen-Jie Huang Ai-Wu Shen Yu-Ping Yin Hai-Li Sun Yu-Ting Yuan 《World Journal of Psychiatry》 SCIE 2024年第11期1631-1640,共10页
BACKGROUND Acute pancreatitis(AP),as a common acute abdomen disease,has a high incidence rate worldwide and is often accompanied by severe complications.Negative emotions lead to increased secretion of stress hormones... BACKGROUND Acute pancreatitis(AP),as a common acute abdomen disease,has a high incidence rate worldwide and is often accompanied by severe complications.Negative emotions lead to increased secretion of stress hormones,elevated blood sugar levels,and enhanced insulin resistance,which in turn increases the risk of AP and significantly affects the patient's quality of life.Therefore,exploring the intervention effects of narrative nursing programs on the negative emotions of patients with AP is not only helpful in alleviating psychological stress and improving quality of life but also has significant implications for improving disease outcomes and prognosis.AIM To construct a narrative nursing model for negative emotions in patients with AP and verify its efficacy in application.METHODS Through Delphi expert consultation,a narrative nursing model for negative emotions in patients with AP was constructed.A non-randomized quasi-experimental study design was used in this study.A total of 92 patients with AP with negative emotions admitted to a tertiary hospital in Nantong City of Jiangsu Province,China from September 2022 to August 2023 were recruited by convenience sampling,among whom 46 patients admitted from September 2022 to February 2023 were included in the observation group,and 46 patients from March to August 2023 were selected as control group.The observation group received narrative nursing plan,while the control group was given with routine nursing.Self-rating anxiety scale(SAS),self-rating depression scale(SDS),positive and negative affect scale(PANAS),caring behavior scale,patient satisfaction scale and 36-item short form health survey questionnaire(SF-36)were used to evaluate their emotions,satisfaction and caring behaviors in the two groups on the day of discharge,1-and 3-month following discharge.RESULTS According to the inclusion and exclusion criteria,a total of 45 cases in the intervention group and 44 cases in the control group eventually recruited and completed in the study.On the day of discharge,the intervention group showed significantly lower scores of SAS,SDS and negative emotion(28.57±4.52 vs 17.4±4.44,P<0.001),whereas evidently higher outcomes in the positive emotion score,Caring behavior scale score and satisfaction score compared to the control group(P<0.05).Repeated measurement analysis of variance showed that significant between-group differences were found in time effect,inter-group effect and interaction effect of SAS and PANAS scores as well as in time effect and inter-group effect of SF-36 scores(P<0.05);the SF-36 scores of two groups at 3 months after discharge were higher than those at 1 month after discharge(P<0.05).CONCLUSION The application of narrative nursing protocols has demonstrated significant effectiveness in alleviating anxiety,ameliorating negative emotions,and enhancing satisfaction among patients with AP. 展开更多
关键词 Acute pancreatitis Negative emotions Narrative nursing model Adverse emotions Self-rating anxiety scale Selfrating depression scale
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Cascaded projection of Gaussian mixture model for emotion recognition in speech and ECG signals 被引量:1
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作者 黄程韦 吴迪 +5 位作者 张晓俊 肖仲喆 许宜申 季晶晶 陶智 赵力 《Journal of Southeast University(English Edition)》 EI CAS 2015年第3期320-326,共7页
A cascaded projection of the Gaussian mixture model algorithm is proposed.First,the marginal distribution of the Gaussian mixture model is computed for different feature dimensions, and a number of sub-classifiers are... A cascaded projection of the Gaussian mixture model algorithm is proposed.First,the marginal distribution of the Gaussian mixture model is computed for different feature dimensions, and a number of sub-classifiers are generated using the marginal distribution model.Each sub-classifier is based on different feature sets.The cascaded structure is adopted to fuse the sub-classifiers dynamically to achieve sample adaptation ability.Secondly,the effectiveness of the proposed algorithm is verified on electrocardiogram emotional signal and speech emotional signal.Emotional data including fidgetiness,happiness and sadness is collected by induction experiments.Finally,the emotion feature extraction method is discussed,including heart rate variability, the chaotic electrocardiogram feature and utterance level static feature.The emotional feature reduction methods are studied, including principle component analysis,sequential forward selection, the Fisher discriminant ratio and maximal information coefficient.The experimental results show that the proposed classification algorithm can effectively improve recognition accuracy in two different scenarios. 展开更多
关键词 Gaussian mixture model emotion recognition sample adaptation emotion inducing
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Artificial emotional model based on finite state machine 被引量:4
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作者 孟庆梅 吴伟国 《Journal of Central South University of Technology》 EI 2008年第5期694-699,共6页
According to the basic emotional theory, the artificial emotional model based on the finite state machine(FSM) was presented. In finite state machine model of emotion, the emotional space included the basic emotiona... According to the basic emotional theory, the artificial emotional model based on the finite state machine(FSM) was presented. In finite state machine model of emotion, the emotional space included the basic emotional space and the multiple emotional spaces. The emotion-switching diagram was defined and transition fimction was developed using Markov chain and linear interpolation algorithm. The simulation model was built using Stateflow toolbox and Simulink toolbox based on the Matlab platform. And the model included three subsystems: the input one, the emotion one and the behavior one. In the emotional subsystem, the responses of different personalities to the external stimuli were described by defining personal space. This model takes states from an emotional space and updates its state depending on its current state and a state of its input (also a state-emotion). The simulation model realizes the process of switching the emotion from the neutral state to other basic emotions. The simulation result is proved to correspond to emotion-switching law of human beings. 展开更多
关键词 finite state machine artificial emotion model Markov chain SIMULATION
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EEG Emotion Recognition Using an Attention Mechanism Based on an Optimized Hybrid Model 被引量:2
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作者 Huiping Jiang Demeng Wu +2 位作者 Xingqun Tang Zhongjie Li Wenbo Wu 《Computers, Materials & Continua》 SCIE EI 2022年第11期2697-2712,共16页
Emotions serve various functions.The traditional emotion recognition methods are based primarily on readily accessible facial expressions,gestures,and voice signals.However,it is often challenging to ensure that these... Emotions serve various functions.The traditional emotion recognition methods are based primarily on readily accessible facial expressions,gestures,and voice signals.However,it is often challenging to ensure that these non-physical signals are valid and reliable in practical applications.Electroencephalogram(EEG)signals are more successful than other signal recognition methods in recognizing these characteristics in real-time since they are difficult to camouflage.Although EEG signals are commonly used in current emotional recognition research,the accuracy is low when using traditional methods.Therefore,this study presented an optimized hybrid pattern with an attention mechanism(FFT_CLA)for EEG emotional recognition.First,the EEG signal was processed via the fast fourier transform(FFT),after which the convolutional neural network(CNN),long short-term memory(LSTM),and CNN-LSTM-attention(CLA)methods were used to extract and classify the EEG features.Finally,the experiments compared and analyzed the recognition results obtained via three DEAP dataset models,namely FFT_CNN,FFT_LSTM,and FFT_CLA.The final experimental results indicated that the recognition rates of the FFT_CNN,FFT_LSTM,and FFT_CLA models within the DEAP dataset were 87.39%,88.30%,and 92.38%,respectively.The FFT_CLA model improved the accuracy of EEG emotion recognition and used the attention mechanism to address the often-ignored importance of different channels and samples when extracting EEG features. 展开更多
关键词 emotion recognition EEG signal optimized hybrid model attention mechanism
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Nursing model of midwifery and postural and psychological interventions:Impact on maternal and fetal outcomes and negative emotions of primiparas 被引量:1
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作者 Ping Gao Cai-Qiong Guo +1 位作者 Ma-Yu Chen Hui-Ping Zhuang 《World Journal of Psychiatry》 SCIE 2023年第8期543-550,共8页
BACKGROUND Primiparas are usually at high risk of experiencing perinatal depression,which may cause prolonged labor,increased blood loss,and intensified pain,affecting maternal and fetal outcomes.Therefore,interventio... BACKGROUND Primiparas are usually at high risk of experiencing perinatal depression,which may cause prolonged labor,increased blood loss,and intensified pain,affecting maternal and fetal outcomes.Therefore,interventions are necessary to improve maternal and fetal outcomes and alleviate primiparas’negative emotions(NEs).AIM To discusses the impact of nursing responsibility in midwifery and postural and psychological interventions on maternal and fetal outcomes as well as primiparas’NEs.METHODS As participants,115 primiparas admitted to Quanzhou Maternity and Child Healthcare Hospital between May 2020 and May 2022 were selected.Among them,56 primiparas(control group,Con)were subjected to conventional midwifery and routine nursing.The remaining 59(research group,Res)were subjected to the nursing model of midwifery and postural and psychological interventions.Both groups were comparatively analyzed from the perspectives of delivery mode(cesarean,natural,or forceps-assisted),maternal and fetal outcomes(uterine inertia,postpartum hemorrhage,placental abruption,neonatal pulmonary injury,and neonatal asphyxia),NEs(Hamilton Anxiety/Depressionrating Scale,HAMA/HAMD),labor duration,and nursing satisfaction.RESULTS The Res exhibited a markedly higher natural delivery rate and nursing satisfaction than the Con.Additionally,the Res indicated a lower incidence of adverse events(e.g.,uterine inertia,postpartum hemorrhage,placental abruption,neonatal lung injury,and neonatal asphyxia)and shortened duration of various stages of labor.It also showed statistically lower post-interventional HAMA and HAMD scores than the Con and pre-interventional values.CONCLUSION The nursing model of midwifery and postural and psychological interventions increase the natural delivery rate and reduce the duration of each labor stage.These are also conducive to improving maternal and fetal outcomes and mitigating primiparas’NEs and thus deserve popularity in clinical practice. 展开更多
关键词 Nursing model of midwifery Postural intervention PRIMIPARA Maternal and fetal outcomes Negative emotions
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Model considering panic emotion and personality traits for crowd evacuation
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作者 孙华锴 陈长坤 《Chinese Physics B》 SCIE EI CAS CSCD 2023年第5期321-336,共16页
Panic is a common emotion when pedestrians are in danger during the actual evacuation, which can affect pedestrians a lot and may lead to fatalities as people are crushed or trampled. However, the systematic studies a... Panic is a common emotion when pedestrians are in danger during the actual evacuation, which can affect pedestrians a lot and may lead to fatalities as people are crushed or trampled. However, the systematic studies and quantitative analysis of evacuation panic, such as panic behaviors, panic evolution, and the stress responses of pedestrians with different personality traits to panic emotion are still rare. Here, combined with the theories of OCEAN(openness, conscientiousness,extroversion, agreeableness, neuroticism) model and SIS(susceptible, infected, susceptible) model, an extended cellular automata model is established by the floor field method in order to investigate the dynamics of panic emotion in the crowd and dynamics of pedestrians affected by emotion. In the model, pedestrians are divided into stable pedestrians and sensitive pedestrians according to their different personality traits in response to emotion, and their emotional state can be normal or panic. Besides, emotion contagion, emotion decay, and the influence of emotion on pedestrian movement decision-making are also considered. The simulation results show that evacuation efficiency will be reduced, for panic pedestrians may act maladaptive behaviors, thereby making the crowd more chaotic. The results further suggest that improving pedestrian psychological ability and raising the standard of management can effectively increase evacuation efficiency. And it is necessary to reduce the panic level of group as soon as possible at the beginning of evacuation. We hope this research could provide a new method to analyze crowd evacuation in panic situations. 展开更多
关键词 panic emotion CA-SIS model crowd evacuation personality trait
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An Improved Three-Dimensional Model for Emotion Based on Fuzzy Theory
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作者 Zijiang Zhu Junshan Li +1 位作者 Xiaoguang Deng Yi Hu 《Journal of Computer and Communications》 2018年第8期101-111,共11页
Emotion Model is the basis of facial expression recognition system. The constructed emotional model should not only match facial expressions with emotions, but also reflect the location relationship between different ... Emotion Model is the basis of facial expression recognition system. The constructed emotional model should not only match facial expressions with emotions, but also reflect the location relationship between different emotions. In this way, it is easy to understand the current emotion of an individual through the analysis of the acquired facial expression information. This paper constructs an improved three-dimensional model for emotion based on fuzzy theory, which corresponds to the facial features to emotions based on the basic emotions proposed by Ekman. What’s more, the three-dimensional model for motion is able to divide every emotion into three different groups which can show the positional relationship visually and quantitatively and at the same time determine the degree of emotion based on fuzzy theory. 展开更多
关键词 emotion model FACIAL EXPRESSION FUZZY Theory THREE-DIMENSIONAL STATE-SPACE
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Construction of Psychological Adjustment Function Model of Music Education Based on Emotional Tendency Analysis
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作者 Bin Zhang 《International Journal of Mental Health Promotion》 2023年第5期655-671,共17页
In the face offierce competition in the social environment,mental health problems gradually get the attention of the public,in order to achieve accurate mental health data analysis,the construction of music education ... In the face offierce competition in the social environment,mental health problems gradually get the attention of the public,in order to achieve accurate mental health data analysis,the construction of music education is based on emotional tendency analysis of psychological adjustment function model.Design emotional tendency analysis of music education psychological adjustment function architecture,music teaching goal as psychological adjust-ment function architecture building orientation,music teaching content as a foundation for psychological adjust-ment function architecture and music teaching process as a psychological adjustment function architecture building,music teaching evaluation as the key of building key regulating function architecture,Establish a core literacy oriented evaluation system.Different evaluation methods were used to obtain the evaluation results.Four levels of psychological adjustment function model of music education are designed,and the psychological adjust-ment function of music education is put forward,thus completing the construction of psychological adjustment function model of music education.The experimental results show that the absolute value of the data acquisition error of the designed model is minimum,which is not more than 0.2.It is less affected by a bad coefficient and has good performance.It can quickly converge to the best state in the actual prediction process and has a strong con-vergence ability. 展开更多
关键词 emotional tendency analysis music education psychological adjustment functional model core literacy orientation
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Applying Score Reliability Fusion to Bi-Model Emotional Speaker Recognition
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作者 H. B. Zhang T. Wang +1 位作者 T. Huang X. Yang 《Journal of Signal and Information Processing》 2013年第3期1-6,共6页
Emotion mismatch between training and testing is one of the important factors causing the performance degradation of speaker recognition system. In our previous work, a bi-model emotion speaker recognition (BESR) meth... Emotion mismatch between training and testing is one of the important factors causing the performance degradation of speaker recognition system. In our previous work, a bi-model emotion speaker recognition (BESR) method based on virtual HD (High Different from neutral, with large pitch offset) speech synthesizing was proposed to deal with this problem. It enhanced the system performance under mismatch emotion states in MASC, while still suffering the system risk introduced by fusing the scores from the unreliable VHD model and the neutral model with equal weight. In this paper, we propose a new BESR method based on score reliability fusion. Two strategies, by utilizing identification rate and scores average relative loss difference, are presented to estimate the weights for the two group scores. The results on both MASC and EPST shows that by using the weights generated by the two strategies, the BESR method achieve a better performance than that by using the equal weight, and the better one even achieves a result comparable to that by using the best weights selected by exhaustive strategy. 展开更多
关键词 emotionAL Speaker Recogitnion SCORE RELIABILITY FUSION FUSION Weight Estimating Strategy Bi-model
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Film and Television Website Scores Authenticity Verification Based on the Emotional Analysis
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作者 Weiyu Tong 《Journal of Computer and Communications》 2024年第2期231-245,共15页
Sentiment analysis is a method to identify and understand the emotion in the text through NLP and text analysis. In the era of information technology, there is often a certain error between the comments on the movie w... Sentiment analysis is a method to identify and understand the emotion in the text through NLP and text analysis. In the era of information technology, there is often a certain error between the comments on the movie website and the actual score of the movie, and sentiment analysis technology provides a new way to solve this problem. In this paper, Python is used to obtain the movie review data from the Douban platform, and the model is constructed and trained by using naive Bayes and Bi-LSTM. According to the index, a better Bi-LSTM model is selected to classify the emotion of users’ movie reviews, and the classification results are scored according to the classification results, and compared with the real ratings on the website. According to the error of the final comparison results, the feasibility of this technology in the scoring direction of film reviews is being verified. By applying this technology, the phenomenon of film rating distortion in the information age can be prevented and the rights and interests of film and television works can be safeguarded. 展开更多
关键词 Bi-LSTM model Film Review emotion Analysis Naive Bayes PYTHON Data Crawl
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基于OCC模型的E-learning系统情感建模 被引量:16
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作者 乔向杰 王志良 王万森 《计算机科学》 CSCD 北大核心 2010年第5期214-218,共5页
根据OCC模型理论,提出一种在e-learning系统中基于认知评价的学生情感识别模型。采用模糊推理方法实现学生对学习事件的期望度推理,并通过构建动态贝叶斯网络对所构建的模型进行了计算机仿真测试和评估,结果验证了模型的合理性和有效性... 根据OCC模型理论,提出一种在e-learning系统中基于认知评价的学生情感识别模型。采用模糊推理方法实现学生对学习事件的期望度推理,并通过构建动态贝叶斯网络对所构建的模型进行了计算机仿真测试和评估,结果验证了模型的合理性和有效性,从而为构建具有情感智能的e-learning系统提供了一种新的情绪识别模型和架构。 展开更多
关键词 occ模型 认知评价 动态贝叶斯网络 情感缺失 情感建模
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基于自定义空间和OCC模型的情绪建模研究 被引量:4
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作者 王志良 乔向杰 +2 位作者 王超 余军 解仑 《计算机工程》 CAS CSCD 北大核心 2007年第4期189-192,共4页
人类不仅具有逻辑推理的能力,而且具有情感控制、表达的能力。通常使用计算机对人类的能力进行模拟,在人工智能赋予计算机逻辑推理能力之后,如何赋予计算机情绪成为一个重要的研究问题。该文就是以人工心理和基本的情绪理论为基础,在三... 人类不仅具有逻辑推理的能力,而且具有情感控制、表达的能力。通常使用计算机对人类的能力进行模拟,在人工智能赋予计算机逻辑推理能力之后,如何赋予计算机情绪成为一个重要的研究问题。该文就是以人工心理和基本的情绪理论为基础,在三维情绪空间中将个性和OCC模型相结合,建立了一个情绪模型。并将此模型作为情感核心,尝试实现了一个虚拟软件人。这个情感虚拟软件人不仅具有学习、记忆能力,而且具有情感交互能力。 展开更多
关键词 情绪空间 occ模型 情绪建模
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V^2-OCC控制Buck变换器 被引量:8
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作者 罗全明 周雒维 +1 位作者 卢伟国 杜雄 《电工技术学报》 EI CSCD 北大核心 2008年第12期78-83,98,共7页
提出一种新型DC/DC控制方法,即V2-OCC控制。首先介绍了其工作原理,然后利用状态空间平均方法建立了V2-OCC控制Buck变换器的小信号模型。在此基础上,对V2-OCC控制和电压控制Buck变换器进行了频域仿真,并对结果进行了对比分析,最后进行了... 提出一种新型DC/DC控制方法,即V2-OCC控制。首先介绍了其工作原理,然后利用状态空间平均方法建立了V2-OCC控制Buck变换器的小信号模型。在此基础上,对V2-OCC控制和电压控制Buck变换器进行了频域仿真,并对结果进行了对比分析,最后进行了实验研究并给出了相关实验结果。仿真和实验结果表明,V2-OCC控制比电压控制Buck变换器具有更好的抗输入电压扰动能力和更好的动态负载性能。 展开更多
关键词 单周控制 V^2-occ控制 小信号模型
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基于改进的OCC情感模型的自然风景图像分类研究 被引量:5
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作者 曹建芳 陈俊杰 李海芳 《计算机应用与软件》 CSCD 北大核心 2014年第6期181-184,共4页
网络技术的发展和图像获取设备的普及导致数字图像迅速增长,依靠先进的技术提取图像蕴含的情感语义实现图像情感语义分类正是当前各行业急需解决的问题。为此提出一种基于改进的OCC情感模型的自然风景图像情感语义分类方法。通过融入性... 网络技术的发展和图像获取设备的普及导致数字图像迅速增长,依靠先进的技术提取图像蕴含的情感语义实现图像情感语义分类正是当前各行业急需解决的问题。为此提出一种基于改进的OCC情感模型的自然风景图像情感语义分类方法。通过融入性格、心情因素描述图像的个性情感,使用BP神经网络实现,解决图像分类中的语义理解问题。使用百度图片频道上下载的600张场景图像进行训练和测试,实验通过与人工计算结果相比较,取得了良好的分类效果,可为更多类型的图像情感语义分类打好基础,具有一定的实用价值。 展开更多
关键词 图像情感语义分类 occ情感模型 性格心情因素 BP神经网络
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基于OCC模型和LSTM模型的财经微博文本情感分类研究 被引量:22
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作者 吴鹏 李婷 +1 位作者 仝冲 沈思 《情报学报》 CSSCI CSCD 北大核心 2020年第1期81-89,共9页
为了解决财经微博文本中网民情感状态转移的时序数据分析问题,本文提出一个基于认知情感评价模型(Ortony,Clore&Collins,OCC)和长短期记忆模型(long short term memory,LSTM)的财经微博文本情感分类模型(OCC-LSTM)。基于OCC模型从... 为了解决财经微博文本中网民情感状态转移的时序数据分析问题,本文提出一个基于认知情感评价模型(Ortony,Clore&Collins,OCC)和长短期记忆模型(long short term memory,LSTM)的财经微博文本情感分类模型(OCC-LSTM)。基于OCC模型从网民认知角度建立情感规则,对财经微博文本进行情感标注,并作为LSTM模型进行深度学习的训练集;基于LSTM模型,使用深度学习中的TensorFlow框架和Keras模块建立相应的实验模型,进行海量微博数据情感分类,并结合13家上市公司3年的微博文本数据进行实证研究和模型验证对比。实证研究结果发现本文提出的模型取得了89.45%的准确率,高于采用传统的机器学习方式的支持向量机方法 (support vector machine,SVM)和基于深度学习的半监督RAE方法 (semi-supervised recursive auto encoder)。 展开更多
关键词 长短期记忆模型 occ模型 财经微博 情感分类
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基于信号和OCC表示的情感模型研究 被引量:2
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作者 朱飒飒 王巍 《信息技术》 2010年第10期155-157,共3页
情感模型的建立可以使计算机具备基本的情感识别和表达能力,在和谐人机交互方面有着广泛的应用。借助于Picard教授关于情感计算的理论,将线性系统理论和数字信号处理方法应用到情感信号与系统建模上,用信号很好地表示了人类的内在情感... 情感模型的建立可以使计算机具备基本的情感识别和表达能力,在和谐人机交互方面有着广泛的应用。借助于Picard教授关于情感计算的理论,将线性系统理论和数字信号处理方法应用到情感信号与系统建模上,用信号很好地表示了人类的内在情感和情绪,并通过MAT-LAB仿真实验分析证明了模型的正确性。最后结合情感的高层次认知推理机制,将情感模型应用到情感虚拟人当中,形象地实现了情感对人脸表情变化的控制。 展开更多
关键词 情感模型 信号表示 情绪情感理论 occ模型 面部表情
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基于OCC模型和贝叶斯网络的情绪句分类方法 被引量:7
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作者 徐源音 柴玉梅 +1 位作者 王黎明 刘箴 《计算机科学》 CSCD 北大核心 2020年第3期222-230,共9页
情绪句分类是情绪分析研究领域的核心问题之一,旨在解决情绪句类别的自动判断问题。传统基于情绪认知模型(OCC模型)的情绪句分类方法大多依赖词典和规则,在文本信息缺失的情况下分类精度不高。文中提出基于OCC模型和贝叶斯网络的情绪句... 情绪句分类是情绪分析研究领域的核心问题之一,旨在解决情绪句类别的自动判断问题。传统基于情绪认知模型(OCC模型)的情绪句分类方法大多依赖词典和规则,在文本信息缺失的情况下分类精度不高。文中提出基于OCC模型和贝叶斯网络的情绪句分类方法,通过分析OCC模型的情绪生成规则,提取情绪评估变量并结合情绪句中含有的表情符号特征构建情绪分类贝叶斯网络;通过概率推理,可以实现句子级文本的情绪分类,并减小句中信息缺失所带来的影响。与NLPCC2014中文微博情绪分析评测的子任务情绪句分类评测结果的对比表明,所提方法具有有效性。 展开更多
关键词 情绪分析 occ模型 贝叶斯网络 情绪句分类
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一种Personality_OCC情感建模的新方法 被引量:3
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作者 孙凤芳 朱晓冬 +4 位作者 刘元宁 张晓旭 张巍 李为韬 李鑫 《吉林大学学报(理学版)》 CAS CSCD 北大核心 2012年第1期106-110,共5页
先将情感的分类、性格、外界刺激等因素进行数学矩阵的量化表示,再通过构建适当的转换矩阵将性格与情感认知结构模型——认知鉴定情绪(OCC)模型相融合,提出一种情感建模的新方法——Personality_OCC模型,从而解决了结合人的性格研究人... 先将情感的分类、性格、外界刺激等因素进行数学矩阵的量化表示,再通过构建适当的转换矩阵将性格与情感认知结构模型——认知鉴定情绪(OCC)模型相融合,提出一种情感建模的新方法——Personality_OCC模型,从而解决了结合人的性格研究人类情感的问题,并通过汽车普适计算环境下虚拟驾驶员情感模拟验证了人的性格对于情感变化有直接影响. 展开更多
关键词 情感 认知结构模型 Personality_occ模型
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基于OCC的Agent情感模型研究 被引量:8
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作者 王岚 王立鹏 《微计算机信息》 北大核心 2007年第02Z期256-258,共3页
Agent不仅要具有逻辑推理能力,还应当具有类似人类的情感能力。通过对情感理论的分析,提出了一个基于OCC的Agent情感模型,使Agent能够模拟像人类一样的认知能力和情感能力,从而行为决策更加智能。通过模型在虚拟环境角色中的应用结果,... Agent不仅要具有逻辑推理能力,还应当具有类似人类的情感能力。通过对情感理论的分析,提出了一个基于OCC的Agent情感模型,使Agent能够模拟像人类一样的认知能力和情感能力,从而行为决策更加智能。通过模型在虚拟环境角色中的应用结果,验证了此模型的合理性。 展开更多
关键词 情感计算 情感理论 occ模型 情感模型
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地铁OCC电力调度仿真培训系统继电保护模块的开发 被引量:1
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作者 刘春明 刘德强 +1 位作者 杨泽平 罗世荣 《机车电传动》 北大核心 2012年第4期61-63,共3页
针对地铁OCC电力调度仿真培训系统继电保护模块准确性与实时性的需要,并为满足地铁OCC电调、行调及环调联合培训实时性的要求,研究了采用分层思想且使用全逻辑判断法的继电保护模型,设计了相应的故障处理流程。以某地铁线的仿真培训系... 针对地铁OCC电力调度仿真培训系统继电保护模块准确性与实时性的需要,并为满足地铁OCC电调、行调及环调联合培训实时性的要求,研究了采用分层思想且使用全逻辑判断法的继电保护模型,设计了相应的故障处理流程。以某地铁线的仿真培训系统为例,验证了模型及流程的正确性。 展开更多
关键词 地铁 occ 电力调度 继电保护仿真 保护模型
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