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Asymmetric Hamming Embedding: Taking the best of our bits for large scale image search

机译:非对称汉明嵌入:充分利用我们的优势进行大规模图像搜索

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This paper proposes an asymmetric Hamming Embedding scheme for large scale image search based on local descriptors. The comparison of two descriptors relies on an vector-to-binary code comparison, which limits the quantization error associated with the query compared with the original Hamming Embedding method. The approach is used in combination with an inverted file structure that offers high efficiency, comparable to that of a regular bag-of-features retrieval system. The comparison is performed on two popular datasets. Our method consistently improves the search quality over the symmetric version. The trade-off between memory usage and precision is evaluated, showing that the method is especially useful for short binary signatures.
机译:提出了一种基于局部描述符的非对称汉明嵌入方案。两个描述符的比较依赖于矢量与二进制代码的比较,与原始汉明嵌入方法相比,它限制了与查询关联的量化误差。该方法与反向文件结构结合使用,该文件结构提供了与常规功能袋检索系统相当的高效率。比较是在两个流行的数据集上进行的。我们的方法在对称版本上不断提高了搜索质量。评估了内存使用率和精度之间的权衡,这表明该方法对于短二进制签名特别有用。

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