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图像设计过程中图像清晰度评价函数的应用
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作者 景学红 《电子技术与软件工程》 2017年第2期73-73,共1页
随着经济和科学技术的的不断发展,极大的促进了社会的进步,提高了人们生活水平的同时,也提高了人们的审美水平,改变人们传统的艺术审美观点。图形设计和当下建筑设计、城市化发展、城市景观设计等工作紧密相连。站在宏观角度来看,图形... 随着经济和科学技术的的不断发展,极大的促进了社会的进步,提高了人们生活水平的同时,也提高了人们的审美水平,改变人们传统的艺术审美观点。图形设计和当下建筑设计、城市化发展、城市景观设计等工作紧密相连。站在宏观角度来看,图形设计关系着国家的整体形象和建筑风格。站在单一角度来看,图像设计,关系着一件艺术作品的美感和艺术感。为了保证图像设计清晰度,保证其实际应用性,本文主要就图像设计过程中图像清晰度评价函数的应用展开分析和研究。 展开更多
关键词 图像设计 图像清晰度 评价函数应用 分析研究
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Analyzing Kansei from Facial Expressions by CSRBF Mapping
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作者 Luis Diago Julian Romero +1 位作者 Junichi Shinoda Ichiro Hagiwara 《Journal of Mechanics Engineering and Automation》 2015年第7期420-426,共7页
This paper describes an application where a new KAE (Kansei/Affective Engineering) system was applied to define the properties of the facial images perceived as Iyashi. Iyashi is a Japanese word used to describe a p... This paper describes an application where a new KAE (Kansei/Affective Engineering) system was applied to define the properties of the facial images perceived as Iyashi. Iyashi is a Japanese word used to describe a peculiar phenomenon that is mentally soothing, but is yet to be clearly defined. Instead of analyzing facial expressions of an individual to determine his emotional state, the proposed system introduces a FQHNN (fuzzy-quantized holographic neural network) to find the rules involved in the Kansei evaluation provided by the subjects about the limited dataset of 20 facial images. In order to validate and gain a clear insight into the rules involved in the Kansei evaluation process, Procrustes analysis and CSRBFs (compactly-supported radial basis functions) are combined to generate new facial images. Procrustes analysis is used to find the minimal dissimilarity measure between two facial images with opposite classification (i.e., Iyashi and Non-lyashi). CSRBFs are proposed for tuning of 17 facial parameters and mapping between facial images within opposite classes. The experiments with two subjects demonstrate that if only two from the five most important parameters of the face are changed, then the Kansei evaluation can change to the opposite class. This paper shows that a continuous and efficient tuning of the design space can be achieved by introducing CSRBF mapping into the new KAE system. 展开更多
关键词 Kansei evaluation Iyashi expressions neuro-fuzzy classifiers radial basis functions
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