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Autonomous emotion development using incremental modified adaptive neuro-fuzzy inference system

机译:利用增量改进的自适应神经模糊推理系统进行自主情绪发展

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In this paper, we propose an autonomous emotion development system with incremental learning for interacting with human subjects, and autonomously understanding the emotional status of humans. For the understanding of human emotion the proposed system needs human-like visual senses perceiving natural scenes as stimuli. According to the relationship between emotional factors and characteristics of an image, we incorporate the fuzzy concept to extract emotional features using L*C*H* color and orientation information. Additionally, it can sense inputs that have no analog in human senses-reading brain signals in human subjects. We consider the electroencephalography (EEC) signals which are stimulated by natural stimuli to form the semantic emotional features as well. We develop a novel adaptive neuro-fuzzy inference system (ANFIS) based on an incremental learning algorithm to autonomously develop the capability of understanding complex emotions. The proposed incremental modified ANFIS needs only the newly arrived data to adjust the shape of Caussian membership functions with full covariance matrix, to generate new membership functions or new rules for labeling emotion according to the characteristics of the new data. Utilizing the developmental process, the proposed system can autonomously develop the mental ability to understand more complex human emotions by mining the characteristics of emotional features and interacting with human subjects.
机译:在本文中,我们提出了一种具有增量学习功能的自主情感开发系统,用于与人类主体互动,并自主理解人类的情感状态。为了理解人的情感,提出的系统需要像人一样的视觉感知自然场景作为刺激。根据情感因素与图像特征之间的关系,我们结合了模糊概念,使用L * C * H *颜色和方向信息提取情感特征。此外,它可以感应人类感官中没有模拟信号的输入,从而读取人类受试者的脑部信号。我们考虑由自然刺激刺激的脑电图(EEC)信号也形成了语义情感特征。我们开发了一种基于增量学习算法的新型自适应神经模糊推理系统(ANFIS),以自主发展理解复杂情绪的能力。拟议的增量修改ANFIS仅需要新到达的数据即可调整具有完全协方差矩阵的Caussian隶属函数的形状,从而根据新数据的特征生成新的隶属函数或用于标记情感的新规则。利用开发过程,所提出的系统可以通过挖掘情绪特征的特征并与人类主体互动,来自主发展理解更复杂的人类情绪的心理能力。

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