Spatial coding for large scale partial-duplicate web image search

@inproceedings{Zhou2010SpatialCF,
  title={Spatial coding for large scale partial-duplicate web image search},
  author={Wengang Zhou and Yijuan Lu and Houqiang Li and Yibing Song and Qi Tian},
  booktitle={ACM Multimedia},
  year={2010}
}
The state-of-the-art image retrieval approaches represent images with a high dimensional vector of visual words by quantizing local features, such as SIFT, in the descriptor space. The geometric clues among visual words in an image is usually ignored or exploited for full geometric verification, which is computationally expensive. In this paper, we focus on partial-duplicate web image retrieval, and propose a novel scheme, spatial coding, to encode the spatial relationships among local features… CONTINUE READING

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Key Quantitative Results

  • Experiments in partial-duplicate web image search, using a database of one million images, reveal that our approach achieves a 53% improvement in mean average precision and 46% reduction in time cost over the baseline bag-of-words approach.
  • Experiments in partial-duplicate web image search, using a database of one million images, reveal that our approach achieves a 53% improvement in mean average precision and 46% reduction in time cost over the baseline bag-of-words approach.

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