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Personalized Clothing Recommendation Based on User Emotional Analysis

机译:基于用户情绪分析的个性化服装推荐

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With the continuous development of economy, consumers pay more attention to the demand for personalization clothing. However, the recommendation quality of the existing clothing recommendation system is not enough to meet the user’s needs. When browsing online clothing, facial expression is the salient information to understand the user’s preference. In this paper, we propose a novel method to automatically personalize clothing recommendation based on user emotional analysis. Firstly, the facial expression is classified by multiclass SVM. Next, the user’s multi-interest value is calculated using expression intensity that is obtained by hybrid RCNN. Finally, the multi-interest value is fused to carry out personalized recommendation. The experimental results show that the proposed method achieves a significant improvement over other algorithms.
机译:随着经济的不断发展,消费者更加关注个性化服装的需求。然而,现有服装推荐系统的推荐质量不足以满足用户的需求。在浏览在线服装时,面部表情是了解用户偏好的突出信息。在本文中,我们提出了一种新颖的方法,根据用户情绪分析自动个性化服装推荐。首先,面部表情由多字母SVM分类。接下来,使用通过混合RCNN获得的表达强度来计算用户的多息值。最后,多息值融合以执行个性化推荐。实验结果表明,该方法达到了其他算法的显着改进。

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