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A presentation and retrieval hash scheme of images based on principal component analysis

机译:基于主成分分析的图像的演示和检索散列方案

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Image representation and approximate query is always a research challenge and is affected greatly by the dimension and size of images. Since hash-based methods and binary encodings in combination with other techniques, such as kernel tricks, a longer binary code and mapping vectors rotation, can maintain a linear query time and query accuracy, they have been used in this area broadly. This paper develops principal component analysis hashing (PCAH) and unequal length of binary coding to divide images into more categories, denoted as PCA-MD, to improve accuracy of the representation and lookup of images. This paper firstly proves that the eigenvector mapping is locality sensitive, which is the basis for more classes division. For the anisotropy of the eigenvectors, PCA-MD utilizes an unequal length of binary coding and fewer eigenvectors, rather than an equal code, to divide the images mapped on every eigenvector to more categories. Moreover, L1-norm distance is applied to measure the distances of images to avoid the enormous computation of Euclidean distance. Theoretical analysis and extensive experimental results demonstrate that the PCA-MD has a higher query performance and a slight longer run time than the state-of-the-art approaches based on the Hamming distance. This in turn verifies that PCAH is a locality sensitive hash and that partitioning into more categories rather than only two categories is reasonable.
机译:图像表示和近似查询始终是一个研究挑战,受到图像的维度和大小的大量影响。由于基于哈希的方法和二进制编码与其他技术相结合,例如内核技巧,更长的二进制代码和映射向量旋转,可以保持线性查询时间和查询精度,它们已经广泛使用。本文开发了主成分分析散列(PCAH)和二进制编码的不等长度,以将图像分为更多类别,表示为PCA-MD,以提高图像的准确性和图像的查找。本文首先证明了特征向量映射是地方敏感,这是更多班级划分的基础。对于特征向量的各向异性,PCA-MD利用不等的二进制编码和更少的特征向量而不是相同的代码来划分对每个特征向量映射到更多类别的图像。此外,施加L1-NOM距离来测量图像的距离,以避免欧几里德距离的巨大计算。理论分析和广泛的实验结果表明,基于汉明距离的最先进的方法,PCA-MD具有更高的查询性能和略微较长的运行时间。这反过来验证了PCAH是一个地方敏感的哈希,并将其分成更多类别,而不是两个类别是合理的。

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