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Animated movie genre detection using symbolic fusion of text and image descriptors

机译:使用文本和图像描述符的符号融合进行动画电影体裁检测

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This paper addresses the automatic movie genre classification in the specific case of animated movies. Two types of information are used. The first one are movie synopsis. For each genre, a symbolic representation of a thematic intensity is extracted from synopsis. Addressed visually, movie content is described with symbolic representations of different mid-level color and activity features. A fusion between the text and image descriptions is performed using a set of symbolic rules conveying human expertise. The approach is tested on a set of 107 animated movies in order to estimate their ”drama” character. It is observed that the text-image fusion achieves a precision up to 78% and a recall of 44%.
机译:本文针对动画电影的特定情况解决了自动电影体裁分类问题。使用两种类型的信息。第一个是电影简介。对于每种类型,从提要中提取主题强度的符号表示。从视觉上讲,电影内容用不同中间颜色和活动特征的符号表示来描述。文本和图像描述之间的融合是使用传达人类专业知识的一组符号规则执行的。该方法在一组107部动画电影上进行了测试,以估计其“戏剧性”人物。可以看到,文本图像融合的精度高达78%,召回率高达44%。

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