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首页> 外文期刊>Journal of visual communication & image representation >Context-aware vocabulary tree for mobile landmark recognition
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Context-aware vocabulary tree for mobile landmark recognition

机译:用于移动地标识别的上下文感知词汇树

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This paper presents an effective approach that incorporates contextual information into vocabulary tree learning for mobile landmark recognition. For most existing mobile landmark recognition works, the context information (GPS or direction) is mainly used to reduce the search space in a heuristic and insufficient manner. Some recent work uses the context information for codebook learning but only the GPS information is explored. We propose an effective mobile landmark recognition approach which exploits both context (direction and location) and content information for vocabulary tree learning and image recognition. The proposed approach has two major contributions: (i) it proposes an information gain-based codeword discrimination learning method to evaluate the discriminative capability of each direction-aware codeword, as generated by a context-aware vocabulary tree, and (ii) it develops a context-aware image scoring technique based on an inverted file structure that speeds up the image matching process greatly. Experimental results on the NTU and San Francisco database show that the proposed method can achieve good recognition performance with fast speed. (C) 2015 Elsevier Inc. All rights reserved.
机译:本文提出了一种有效的方法,该方法将上下文信息纳入词汇树学习中以进行移动地标识别。对于大多数现有的移动地标识别作品,上下文信息(GPS或方向)主要用于启发式且不足以减少搜索空间。最近的一些工作使用上下文信息进行密码本学习,但仅探索了GPS信息。我们提出了一种有效的移动地标识别方法,该方法利用上下文(方向和位置)和内容信息进行词汇树学习和图像识别。所提出的方法有两个主要贡献:(i)提出了一种基于信息增益的码字识别学习方法,以评估由上下文感知的词汇树生成的每个方向感知的码字的判别能力,以及(ii)开发基于反向文件结构的上下文感知图像评分技术,可大大加快图像匹配过程。在NTU和San Francisco数据库上的实验结果表明,该方法可以快速获得良好的识别性能。 (C)2015 Elsevier Inc.保留所有权利。

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