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Personalized Digital Image Aesthetics in a Digital Medium Environment

机译:数字媒体环境中的个性化数字图像美学

摘要

Techniques and systems are described to determine personalized digital image aesthetics in a digital medium environment. In one example, a personalized offset is generated to adapt a generic model for digital image aesthetics. A generic model, once trained, is used to generate training aesthetics scores from a personal training data set that corresponds to an entity, e.g., a particular user, group of users, and so on. The image aesthetics system then generates residual scores (e.g., offsets) as a difference between the training aesthetics score and the personal aesthetics score for the personal training digital images. The image aesthetics system then employs machine learning to train a personalized model to predict the residual scores as a personalized offset using the residual scores and personal training digital images.
机译:描述了确定数字媒体环境中的个性化数字图像美感的技术和系统。在一个示例中,生成个性化偏移以使通用模型适应数字图像美学。通用模型一旦被训练,就被用于从对应于实体(例如,特定用户,用户组等)的个人训练数据集生成训练美学分数。然后,图像美学系统生成残差得分(例如,偏移量),作为针对个人训练数字图像的训练美学得分与个人美学得分之间的差。然后,图像美学系统采用机器学习来训练个性化模型,以使用残差分数和个人训练数字图像将残差分数预测为个性化偏移。

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