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A Unified Semantic Embedding: Relating Taxonomies and Attributes

机译:一个统一的语义嵌入:与分类和属性相关

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We propose a method that learns a discriminative yet semantic space for object categorization, where we also embed auxiliary semantic entities such as supercategories and attributes. Contrary to prior work which only utilized them as side information, we explicitly embed the semantic entities into the same space where we embed categories, which enables us to represent a category as their linear combination. By exploiting such a unified model for semantics, we enforce each category to be represented by a supercategory + sparse combination of attributes, with an additional exclusive regularization to learn discriminative composition.
机译:我们提出了一种方法,用于了解对象分类的判别且语义空间,在那里我们还嵌入了辅助语义实体,例如超类别和属性。与现有的工作相反,仅使用它们作为侧面信息,我们将语义实体明确嵌入到我们嵌入类别的相同空间中,这使我们能够将类别代表为线性组合。通过利用这种统一的语义模型,我们强制执行每个类别以由一个超级类别+稀疏组合表示的属性,具有额外的专用正则化来学习判别构图。

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