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Object recognition in subband transform-compressed images by use of correlation filters

机译:使用相关滤波器的子带变换压缩图像中的目标识别

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摘要

We introduce subband correlation filters (SCFs) as a solution to the problem of object recognition at multiple resolution levels in quantized transformed imagery. The approach synthesizes correlation filters that operate directly on subband coefficients rather than on image data. We explore two techniques to accomplish the reduced-resolution recognition: (1) training the correlation filters to incorporate downsampling tolerance and (2) adaptation of the subband decomposition filters to accommodate the reduced resolutions. For compression ratios of 20:1, SCFs demonstrate recognition performance of at least 90%, 85%, and 75%, respectively, on 2-, 4-, and 8-ft-resolution synthetic aperture radar data.
机译:我们介绍了子带相关滤波器(SCF),以解决量化变换图像中多个分辨率级别的对象识别问题。该方法合成直接在子带系数而不是图像数据上运行的相关滤波器。我们探索两种技术来实现降低分辨率的识别:(1)训练相关滤波器以合并下采样容限,以及(2)适应子带分解滤波器以适应降低的分辨率。对于20:1的压缩率,SCF在2、4和8英尺分辨率的合成孔径雷达数据上分别表现出至少90%,85%和75%的识别性能。

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