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Zero-Shot Classification Based on Multitask Mixed Attribute Relations and Attribute-Specific Features

机译:基于多任务混合属性关系和特定于属性功能的零拍分类

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摘要

Zero-shot classification is a hot topic in computer vision and pattern recognition. Most zero-shot classification methods are based on the intermediate level representation of attributes to achieve knowledge transfer from the training classes to the unseen test classes. Recently, multitask learning (MTL) has been shown as one of state-of-the-art approaches for attribute learning and zero-shot classification. Aiming at the attribute relation learning, features shared by attributes learning and attribute heterogeneity, we propose a zero-shot classification based on multitask mixed attribute relations and attribute-specific features. First, considering the relationship between attribute-attribute and attribute-features, a second-order attribute relation and attribute-specific features learning model is constructed from training samples based on MTL. Second, second-order attribute relation is extended to high-order attribute relation and multiple attribute classifiers are learned. Finally, zero-shot classification is completed based on the maximum posterior probability. Experimental results on AWA and PubFig data sets show that the proposed method can yield more accurate attribute prediction and zero-shot classification compared with several multitask attribute learning methods.
机译:零拍分类是计算机视觉和模式识别中的热门话题。大多数零拍分类方法基于属性的中间级别表示,以实现从培训类到看不见的测试类的知识转移。最近,多任务学习(MTL)已被示为属性学习和零拍摄分类的最先进方法之一。针对属性关系学习,属性学习和属性异质性共享的功能,我们提出了基于多任务混合属性关系和特定于属性的特定功能的零拍分类。首先,考虑属性属性和属性特征之间的关系,基于MTL的训练样本构建二阶属性关系和属性特定的特征学习模型。其次,二阶属性关系扩展到高阶属性关系,并学习多个属性分类器。最后,基于最大后概率完成零拍分类。 AWA和PUBFIG数据集的实验结果表明,与多个MultitAstAst属性学习方法相比,该方法可以产生更准确的属性预测和零拍分类。

著录项

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    China Univ Min & Technol Sch Informat & Control Engn Xuzhou 221116 Jiangsu Peoples R China|Xuzhou Med Univ Sch Med Imaging Xuzhou 221004 Jiangsu Peoples R China;

    China Univ Min & Technol Sch Informat & Control Engn Xuzhou 221116 Jiangsu Peoples R China|Xuzhou Key Lab Artificial Intelligence & Big Data Xuzhou 221116 Jiangsu Peoples R China;

    China Univ Min & Technol Sch Informat & Control Engn Xuzhou 221116 Jiangsu Peoples R China|Xuzhou Key Lab Artificial Intelligence & Big Data Xuzhou 221116 Jiangsu Peoples R China;

    Univ British Columbia Elect & Comp Engn Dept Vancouver BC V6T 1Z4 Canada;

    China Univ Min & Technol Sch Elect & Power Engn Xuzhou 221116 Jiangsu Peoples R China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Attribute relation learning; attribute-specific features; multitask; zero-shot classification;

    机译:属性关系学习;特定于属性的功能;多址;零拍分类;

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