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Fusion Processing and Quality Evaluation of Remote Sensing Images Based on the Integration of Different Transform Methods with IHS

机译:基于IHS不同变换方法集成的遥感图像融合处理与质量评价

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With the increasingly universal use of remote sensing data, related development is required to extract and enhance image information. In this paper, a SPOT image including multispectral and panchromatic bands and a Landsat5/TM image have been used to study fusion performance based on the integration of intensity, hue and saturation (IHS) and five transform methods: linear stretching, histogram matching, double histogram matching, wavelet transforming and integration filtering. The results show that the fusion images were enhanced in quality by combining information from two images, producing increased definition, and preserving the spectral fidelity of the input dataset using an appropriate fusion method. The difference in fusion performance among integration methods was obvious. As a whole, the integration of a wavelet transform and IHS had the comparative advantage because it could get a higher quality fusion image than with information capacity, definition or spectral fidelity of the input dataset. In addition, the results showed the simple integration of linear stretching and IHS transforms could produce better fusion images, and it is practicable for use by non-professionals for remote sensing in many software applications including ENVI, Matlab and Erdas. Meanwhile it could be simpler and more practicable for most users, especially those not adept with GIS technology.
机译:随着日益普遍使用的遥感数据,相关的开发需要提取和增强图像信息。在本文中,包括多光谱和全色带和一个Landsat5 / TM图像的光斑图像已被用来根据亮度,色调和饱和度(IHS)的集成研究融合性能和五个变换方法:线性拉伸,直方图匹配,双直方图匹配,小波变换和集成滤波。结果表明,该融合图像是在质量通过从两个图像组合信息,从而产生增加的定义,并使用合适的融合方法保持输入数据集的频谱保真度增强。在集成方法中融合性能上的差别是显而易见的。作为一个整体,一个融合小波变换和IHS有比较优势,因为它可以得到更高质量的图像融合比信息容量,定义或输入数据集的光谱保真度。此外,结果表明的线性拉伸和IHS变换可以产生更好的融合图像的简单的集成,并且它是可行的用于通过在许多软件的应用,包括ENVI,Matlab和ERDAS非专业人员用于遥感使用。同时也可能是更简单,更可行对于大多数用户,尤其是那些不擅长与GIS技术。

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