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首页> 外文期刊>Pattern Recognition: The Journal of the Pattern Recognition Society >Unified feature analysis in JPEG and JPEG 2000-compressed domains
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Unified feature analysis in JPEG and JPEG 2000-compressed domains

机译:JPEG和JPEG 2000压缩域中的统一特征分析

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摘要

Retrieving images compressed by different algorithms typically involves a pre-processing operation to decompress them onto the spatial domain from which features are extracted for further analysis. Our objective is to investigate common features that can be found in JPEG-compressed and JPEG 2000-compressed images so that image indexing can be done directly in their respective compressed domains. A fundamental difference between JPEG and JPEG 2000 is their transforms; the former uses a block-based discrete cosine transform (BDCT) while the latter uses a wavelet transform (WT). Direct comparison on BDCT blocks and WT subbands cannot reveal their relationship. By employing our proposed subband-fittering model, the BDCT coefficients can be concatenated to form structures similar to WT subbands. Our theoretical studies show that the concatenated BDCT and WT filters share common characteristics in terms of passband regions, magnitude and energy spectra. In particular, their low-pass filters are identical for Haar wavelets and highly similar for other wavelet kernels. Despite the fact that compression can affect features that can be extracted, our experimental results confirm that common features can always be extracted from JPEG- and JPEG 2000-compressed domains irrespective of the values of the compression ratio and the types of WT kernels used. As a result, similar JPEG-compressed and JPEG 2000-compressed images can be retrieved from one another without requiring a full decompression. (c) 2006 Pattern Recognition Society. Published by Elsevier Ltd. All rights reserved.
机译:检索由不同算法压缩的图像通常涉及预处理操作,以将其解压缩到空间域中,从中提取特征以进行进一步分析。我们的目标是研究可以在JPEG压缩图像和JPEG 2000压缩图像中找到的常见功能,以便可以在它们各自的压缩域中直接进行图像索引。 JPEG和JPEG 2000之间的根本区别在于它们的转换。前者使用基于块的离散余弦变换(BDCT),而后者则使用小波变换(WT)。对BDCT块和WT子带的直接比较无法揭示它们之间的关系。通过采用我们提出的子带拟合模型,可以将BDCT系数连接起来以形成类似于WT子带的结构。我们的理论研究表明,串联的BDCT和WT滤波器在通带区域,幅度和能谱方面具有共同的特征。特别是,它们的低通滤波器对于Haar小波是相同的,而对于其他小波内核是高度相似的。尽管压缩会影响可以提取的特征,但我们的实验结果证实,无论压缩率的值和所使用的WT内核的类型如何,始终可以从JPEG和JPEG 2000压缩域中提取常用特征。结果,无需完全解压缩就可以相互检索相似的JPEG压缩图像和JPEG 2000压缩图像。 (c)2006模式识别学会。由Elsevier Ltd.出版。保留所有权利。

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