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Fusion of polarimetric image using contourlet transform

机译:使用Contourlet变换融合偏振图像

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Contourlet transform is the combination of the multi-scale analysis and multi-directional analysis in processing high-dimensional signals and has better approximation precision and better sparse description. Firstly, Using the Contourlet transform, several polarimetric images can be decomposed into low-frequency coefficients and high-frequency coefficients with multi-scales and multi-directions. For the low-frequency coefficients, the average fusion method is used. For the each directional high frequency sub-band coefficients, the larger value of region variance information measurement is used to select the better coefficients for fusion. At last the fused image can be obtained by utilizing inverse transform for fused contourlet coefficients. Experimental results show that the proposed algorithm works better in preserving the edges and texture information compared with the traditional image fusion algorithms.
机译:Contourlet变换是处理高维信号时多尺度分析和多方向分析的结合,具有更好的逼近精度和更好的稀疏描述。首先,利用Contourlet变换,可以将几个偏振图像分解为具有多尺度和多方向的低频系数和高频系数。对于低频系数,使用平均融合方法。对于每个方向性高频子带系数,使用较大的区域方差信息测量值来选择更好的融合系数。最后,可以通过对融合的contourlet系数进行逆变换来获得融合图像。实验结果表明,与传统的图像融合算法相比,该算法在保留边缘和纹理信息方面效果更好。

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