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Low-Complexity Adaptive Lossless Compression of Hyperspectral Imagery

机译:高光谱影像的低复杂度自适应无损压缩

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A low-complexity, adaptive predictive technique for lossless compression of hyperspectral imagery is described. This technique is designed to be suitable for implementation in hardware such as a field programmable gate array (FPGA); such an implementation could be used for high-speed compression of hyperspectral imagery onboard a spacecraft. The predictive step of the technique makes use of the sign algorithm, which is a relative of the least mean square (LMS) algorithm from the field of low-complexity adaptive filtering. The compressed data stream consists of prediction residuals encoded using a method similar to that of the JPEG-LS lossless image compression standard. Compression results are presented for several datasets including some raw Airborne Visible/Infrared Imaging Spectrometer (AVIRIS) datasets and raw Atmospheric Infrared Sounder (AIRS) datasets. The compression effectiveness obtained with the technique is competitive with that of the best of previously described techniques with similar complexity.
机译:描述了一种用于高光谱图像的无损压缩的低复杂度自适应预测技术。该技术旨在适合在诸如现场可编程门阵列(FPGA)之类的硬件中实施;这样的实施方式可以用于航天器上的高光谱图像的高速压缩。该技术的预测步骤利用了符号算法,该符号算法是低复杂度自适应滤波领域中最小均方(LMS)算法的相对符号。压缩数据流由使用类似于JPEG-LS无损图像压缩标准的方法编码的预测残差组成。给出了几个数据集的压缩结果,包括一些原始的机载可见/红外成像光谱仪(AVIRIS)数据集和原始的大气红外测深仪(AIRS)数据集。使用该技术获得的压缩效果与具有类似复杂性的上述最佳技术相比具有竞争力。

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