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Lossless compression of hyperspectral imagery via RLS filter

机译:通过RLS滤波器对高光谱图像进行无损压缩

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摘要

A new algorithm for lossless compression of hyperspectral imagery is proposed. First, the average value of four neighbour pixels of the current pixel is calculated as local mean, which is subtracted by the current pixel to eliminate correlation in the current band image. The residual produced by this step is called local difference. The local differences of the pixels which co-locate with the current pixel in previous bands form the input vector of the recursive least square (RLS) filter, by which the prediction value of the current local difference is produced. Then, the prediction residual is sent to the adaptive arithmetic encoder. Experiment results show that the proposed algorithm produces state-of-the-art performance with relatively low complexity, and it is suitable for real-time compression on satellites.
机译:提出了一种新的高光谱图像无损压缩算法。首先,将当前像素的四个相邻像素的平均值计算为局部均值,将其与当前像素相减以消除当前频带图像中的相关性。此步骤产生的残差称为局部差异。与先前像素中的当前像素共处一地的像素的局部差异形成了递归最小二乘(RLS)滤波器的输入向量,由此产生了当前局部差异的预测值。然后,将预测残差发送到自适应算术编码器。实验结果表明,该算法产生的算法具有相对较低的复杂度,并且适用于卫星的实时压缩。

著录项

  • 来源
    《Electronics Letters》 |2013年第16期|1-1|共1页
  • 作者

    Song; J.; Zhang; Z.; Chen; X.;

  • 作者单位

    Centre for Space Science and Applied Research, Chinese Academy of Sciences, Beijing 100190, People's Republic of China|c|;

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  • 正文语种 eng
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