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Attention-Based Multi-modal Emotion Recognition from Art

机译:基于注意力的艺术的多模态情绪识别

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Emotions are very important in dealing with human decisions, interactions, and cognitive processes. Art is an imaginative human creation that should be appreciated, thought-provoking, and elicits an emotional response. The automatic recognition of emotions triggered by art is of considerable importance. It can be used to categorize artworks according to the emotions they evoke, recommend paintings that accentuate or balance a particular mood, and search for paintings of a particular style or genre that represent custom content in a custom state of impact. In this paper, we propose an attention-based multi-modal approach to emotion recognition that aims to use information from both the painting and title channels to achieve more accurate emotion recognition. Experimental results on the WikiArt emotion dataset showed the efficiency of the model we proposed and the usefulness of image and text modalities in emotion recognition.
机译:在处理人类决策,互动和认知过程方面非常重要。 艺术是一种富有想象力的人类创作,应该欣赏,思想引发,并引发情绪反应。 自动识别艺术触发的情绪具有重要意义。 它可以用来根据他们唤起的情绪对艺术品进行分类,推荐绘画的绘画,突出或平衡特定情绪,并搜索特定风格或类型的绘画,这些绘画在自定义影响状态下代表定制内容。 在本文中,我们提出了一种基于关注的多模态方法来实现情感识别,旨在利用来自绘画和标题渠道的信息来实现更准确的情感识别。 Wikiart情感数据集的实验结果显示了我们提出的模型的效率以及情感认可中的图像和文本方式的实用性。

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