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Compression of multispectral images by spectral classification and transform coding

机译:通过光谱分类和变换编码对多光谱图像进行压缩

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This paper presents a new technique for the compression of multispectral images, which relies on the segmentation of the image into regions of approximately homogeneous land cover. The rationale behind this approach is that, within regions of the same land cover, the pixels have stationary statistics and are characterized by mostly linear dependency, contrary to what usually happens for unsegmented images. Therefore, by applying conventional transform coding techniques to homogeneous groups of pixels, the proposed algorithm is able to effectively exploit the statistical redundancy of the image, thereby improving the rate distortion performance. The proposed coding strategy consists of three main steps. First, each pixel is classified by vector quantizing its spectral response vector, so that both a reliable classification and a minimum distortion encoding of each vector are obtained. Then, the classification map is entropy encoded and sent as side information, Finally, the residual vectors are grouped according to their classes and undergo Karhunen-Loeve transforming in the spectral domain and discrete cosine transforming in the spatial domain. Numerical experiments on a six-band thematic mapper image show that the proposed technique outperforms the conventional transform coding technique by 1 to 2 dB at all rates of interest.
机译:本文提出了一种用于压缩多光谱图像的新技术,该技术依赖于将图像分割成近似均质的土地覆盖区域。这种方法的基本原理是,在同一土地覆被区域内,像素具有固定的统计量,并且大多具有线性相关性,这与未分割图像通常会发生的情况相反。因此,通过将常规的变换编码技术应用于同质的像素组,所提出的算法能够有效地利用图像的统计冗余,从而提高了速率失真性能。提议的编码策略包括三个主要步骤。首先,通过矢量量化其光谱响应矢量来对每个像素进行分类,从而获得每个矢量的可靠分类和最小失真编码。然后,对分类图进行熵编码并作为辅助信息发送,最后,根据残差矢量的类别对残差矢量进行分组,并在频谱域中进行Karhunen-Loeve变换,在空间域中进行离散余弦变换。在六波段主题映射器图像上的数值实验表明,在所有感兴趣的速率下,所提出的技术均比传统的变换编码技术高1至2 dB。

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