通过本地语境的视觉短语袋

E. Román-Rangel, S. Marchand-Maillet
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引用次数: 3

摘要

本文将视觉词袋模型扩展为视觉短语袋模型。所引入的视觉短语袋表示是在对共现视觉词的概率描述方法的基础上构建的,该方法适用于每个参考词。这种视觉短语袋表示隐式地编码了视觉词之间的空间关系,因此是一种更丰富的表示,同时保持了视觉词袋模型的紧凑性。我们通过一系列的统计分析和检索实验证明了我们的方法的有效性,并表明它在很大程度上优于以前构建袋表示的方法。此外,我们的方法允许查询传统的词袋和建议的短语袋。我们在一个复杂形状的数据集上进行了检索实验,这些数据集的实例对应于来自古代美洲的前哥伦比亚玛雅文化的象形文字。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Bag-of-Visual-Phrases via Local Contexts
This paper extends the bag-of-visual-words representations to a bag-of-visual-phrases model. The introduced bag-of-visual-phrases representation is constructed upon a proposed method for probabilistic description of co-occurring visual words, which is adapted for each reference word. This bag-of-visual-phrases representation implicitly encodes spatial relationships among visual words, thus being a richer representation while remaining as compact as the bag-of-visual-words model. We demonstrate the effectiveness of our method with a series of statistical analysis and retrieval experiments, and show that it largely outperforms previous methods for construction of bag representations. Furthermore, our method allows to query traditional bag-of-words vs the proposed bag-of-phrases. We conducted retrieval experiments on a dataset of complex shapes, whose instances correspond to hieroglyphs of the pre-Columbian Maya culture from the ancient Americas.
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