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A Parallel Differential Box-Counting Algorithm Applied to Hyperspectral Image Classification

机译:一种并行差分盒计数算法在高光谱图像分类中的应用

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In this letter, spatial information through fractal measures is adopted to combine with the spectral information to improve the land cover classification. The spectral features alone and later combined with texture features, using MODIS/ASTER airborne simulator imagery, were fed into a neural classifier. Classification performance was evaluated by a confusion matrix measured by overall accuracy and kappa coefficient. In particular, a parallel differential box-counting (DBC) (PDBC) algorithm for fractal estimation was implemented on a multicore PC. The computation efficiency was ensured through the use of PDBC algorithm which is much faster than that of the original DBC. Furthermore, multicore processors offer great potential for speeding up the computation by partitioning the load among the cores. Multithreading technique is adopted to fully explore its multicore capability. Experimental results demonstrate that the proposed approach provides substantial improvements in classification accuracy while requiring much less computation time without extra hardware resources.
机译:在这封信中,采用了通过分形测量的空间信息与光谱信息相结合来改善土地覆被的分类。使用MODIS / ASTER机载模拟器图像,单独将光谱特征以及后来与纹理特征相结合的信息输入神经分类器。分类性能由混淆矩阵评估,该矩阵由总体准确性和kappa系数测量。尤其是,在多核PC上实现了用于分形估计的并行差分盒计数(DBC)(PDBC)算法。通过使用PDBC算法确保了计算效率,该算法要比原始DBC快得多。此外,多核处理器具有通过在内核之间分配负载来加速计算的巨大潜力。采用多线程技术来充分利用其多核功能。实验结果表明,提出的方法可以显着提高分类精度,同时所需的计算时间更少,而无需额外的硬件资源。

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