基于训练图像对应分析特征的绘画情感分类

Leila Nemati Mansour, F. Farokhi
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摘要

如今,心理学家已经证明,许多外部因素和心理伤害会影响个体的身体健康。所以这需要社区所有成员的关注。儿童更容易受到自闭症和多动症等伤害和疾病的影响,包括那些主要影响他们生活质量的疾病。患有这些疾病的人在处理周围环境方面有困难,无法展示自己的能力。所以随着时间的推移,人们变得孤立,无法发挥他们的才能。但是那些关心社区改革和发展的人正在寻找一种方法来帮助这些孩子。这些人中有艺术治疗师,他们试图通过使用艺术技术来提高这些患有上述疾病的患者的生活质量。一个重要的艺术作品是处理过程的视觉表现。通过这种方式,人可以通过发挥形象或戏剧来表达情绪,心理压力,情绪和压力。因此,我们可以想象艺术治疗的精炼作用,它促进了人类的交流。我们已经证明了绘画和标记图像之间存在有意义的关系,通过基于UTA算法提取有效特征和使用快速凝聚最近邻(FCNN)选择重要实例,可以训练出有意义的智能系统。结果表明,使用上述方法和对应分析(CA)特征可以将task1的分类准确率提高到66.5%,task2的分类准确率提高到64.4%。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Classification of Emotion Aroused from Painting Using Correspondence Analysis Features of Trained Pictures
Nowadays, psychologists have proven that many external factors and psychological damage affect the physical health of individuals. So this requires the attention of all members of a community. Children are more exposed to such injuries and disorders such as autism and ADHD, including those that mainly affect their quality of life. People with these disorders are having trouble handling their surroundings and cannot show their abilities. So over time, people become isolated, unable to flourish their talents. But people who are concerned about the reform and growth of the community are looking for a way to help these children. Among these people are art therapists which try to increase the quality of life for such patients with mentioned disorders by using art techniques. An important work of art is the visual representation of the treatment process. In this way, the person can express emotions, psychological stresses, emotions and stress by exerting an image or a drama. Therefore, we can imagine a refining role for art therapy, which promotes human communication.We have shown that there exist a meaningful relationship between paintings and Labeled images in a way that a meaningful intelligent system could be trained by extracting effective features based on UTA algorithm and selecting important instances using Fast Condensed Nearest Neighbor (FCNN). The results shown that using mentioned approach and Correspondence Analysis (CA) features can improve the classification accuracy to 66.5% in task1 and 64.4% in task2.
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