首页> 外文会议>Geoscience and Remote Sensing Symposium, 2003. IGARSS '03. Proceedings. 2003 IEEE International >Study on the spectral quality preservation derived from multisensor image fusion techniques between JERS-1 SAR and Landsat TM data
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Study on the spectral quality preservation derived from multisensor image fusion techniques between JERS-1 SAR and Landsat TM data

机译:JERS-1 SAR与Landsat TM数据之间基于多传感器图像融合技术的光谱质量保存研究

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The advantage of multisensor data fusion stems from the fact that the use of multiple types of sensors increases the accuracy with which a quantity can be observed or characterized. The response of radar is more a function of geometry and structure than surface reflection as occurs in the optical wavelengths. A suitable fusion method has to be chosen with respect to the used spectral characteristic of the multispectral bands and the intended application. This paper describes a comparative study of multisensor image fusion techniques in preserving spectral quality of the fused images. Image fusion techniques applied in this study are: wavelet, intensity-hue-saturation (IHS), principal component analysis (PCA), and high pass filtering (HPF). With these image fusion techniques, a higher spatial resolution JERS-1 SAR is fused with Landsat TM data. The merging process is carried out at the pixel level and the comparison of the resulting images is explained based on the measurement in preserving spectral quality of the fused images. Assessment of the spectral quality is performed by graphical and statistical methods between the original TM image and the fused images. The factors computed to qualify the fused images are: mean, standard deviation, coefficient correlation, and entropy. With a visual inspection, wavelet and PCA techniques seem to be better than the other techniques. PCA provided the greatest improvement with an average entropy of about 5.119 bits/pixel.
机译:多传感器数据融合的优点来自多种类型的传感器的使用增加了可以观察或表征量的精度。雷达的响应是几何形状和结构的函数,而不是光学波长中发生的表面反射。必须选择合适的融合方法,相对于多光谱带和预期应用的使用光谱特性。本文介绍了一种维护融合图像的光谱质量的多传感器图像融合技术的比较研究。本研究中应用的图像融合技术是:小波,强度 - 色调饱和度(IHS),主成分分析(PCA)和高通滤波(HPF)。利用这些图像融合技术,较高的空间分辨率JERS-1 SAR与Landsat TM数据融合。合并过程在像素级别执行,并且基于保留融合图像的频谱质量的测量来说明所得到的图像的比较。通过原始TM图像和融合图像之间的图形和统计方法进行频谱质量的评估。计算为限定融合图像的因素是:平均值,标准偏差,系数相关性和熵。通过目视检查,小波和PCA技术似乎比其他技术更好。 PCA提供了最大的改进,平均熵约为5.119位/像素。

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