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Multi-Label Multi-Instance Learning for Image Classification

机译:用于图像分类的多标签多实例学习

摘要

Described is a technology by which an image is classified (e.g., grouped and/or labeled), based on multi-label multi-instance data learning-based classification according to semantic labels and regions. An image is processed in an integrated framework into multi-label multi-instance data, including region and image labels. The framework determines local association data based on each region of an image. Other multi-label multi-instance data is based on relationships between region labels of the image, relationships between image labels of the image, and relationships between the region and image labels. These data are combined to classify the image. Training is also described.
机译:描述了一种基于语义标签和区域的基于多标签多实例数据学习的分类对图像进行分类(例如,分组和/或标记)的技术。在集成框架中将图像处理为多标签多实例数据,包括区域和图像标签。框架基于图像的每个区域确定本地关联数据。其他多标签多实例数据基于图像的区域标签之间的关系,图像的图像标签之间的关系以及区域和图像标签之间的关系。这些数据被组合以对图像进行分类。还介绍了培训。

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