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aiTPR: Attribute Interaction-Tensor Product Representation for Image Caption

机译:AITPR:图像标题的属性交互 - Tensor产品表示

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Region visual features enhance the generative capability of the machines based on features. However, they lack proper interaction-based attentional perceptions and end up with biased or uncorrelated sentences or pieces of misinformation. In this work, we propose Attribute Interaction-Tensor Product Representation (aiTPR), which is a convenient way of gathering more information through orthogonal combination and learning the interactions as physical entities (tensors) and improving the captions. Compared to previous works, where features add up to undefined feature spaces, TPR helps maintain sanity in combinations, and orthogonality helps define familiar spaces. We have introduced a new concept layer that defines the objects and their interactions that can play a crucial role in determining different descriptions. The interaction portions have contributed heavily to better caption quality and have out-performed various previous works on this domain and MSCOCO dataset. For the first time, we introduced the notion of combining regional image features and abstracted interaction likelihood embedding for image captioning.
机译:区域视觉功能根据特征增强了机器的生成功能。然而,它们缺乏适当的基于互动的注意力感知,并最终偏离或不相关的句子或错误信息。在这项工作中,我们提出了属性交互 - 张量产品表示(AITPR),这是通过正交组合收集更多信息的方便方式,并将交互作为物理实体(张量)和改进标题。与以前的作品相比,在功能加入未定义的特征空间的情况下,TPR有助于维护组合的理智,并且正交性有助于定义熟悉的空间。我们介绍了一个新的概念图层,定义了对象及其交互,可以在确定不同描述时发挥至关重要的作用。交互部分对更好的标题质量贡献很大,并且在该域和Mscoco数据集上已经进行了各种先前的工作。我们首次介绍了组合区域图像特征和抽象的交互偏离图像标题的概念的概念。

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