使用高级视觉表示的有效的基于对象的图像检索

I. Sayad, J. Martinet, T. Urruty, Samir Amir, C. Djeraba
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引用次数: 3

摘要

有有效的方法来访问所需的图像是必不可少的,现在有大量的数字图像可用性。提出的方法是基于包含期望对象的图像检索(基于对象的图像检索)和文本检索之间的类比。我们提出了一种更高层次的视觉表示,用于超越视觉外观的基于对象的图像检索。本文提出的视觉表示在两个方面改进了传统的基于部分的词袋图像表示。首先,该方法通过从同一局部语境中频繁共存且无噪声的视觉词集构建一个中级描述词视觉短语来增强视觉词的识别能力。其次,为了弥合视觉外观差异或获得更好的类内不变性,该方法根据视觉词和短语的类概率分布将其聚类成视觉句子。
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Effective object-based image retrieval using higher-level visual representation
Having effective methods to access the desired images is essential nowadays with the availability of huge amount of digital images. The proposed approach is based on an analogy between image retrieval containing desired objects (object-based image retrieval) and text retrieval. We propose a higher-level visual representation, for object-based image retrieval beyond visual appearances. The proposed visual representation improves the traditional part-based bag-of-words image representation, in two aspects. First, the approach strengthens the discrimination power of visual words by constructing an mid level descriptor, visual phrase, from frequently co-occurring and non noisy visual word-set in the same local context. Second, to bridge the visual appearance difference or to achieve better intra-class invariance power, the approach clusters visual words and phrases into visual sentence, based on their class probability distribution.
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