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A Grid Enabled Monte Carlo Hyperspectral Synthetic Image Remote Sensing Model (GRID-MCHSIM) for Coastal Water Quality Algorithm

机译:基于网格的海岸水质算法蒙特卡洛高光谱合成图像遥感模型(GRID-MCHSIM)

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Previous studies indicate that parallel computing for hyperspectral remote sensing image generation is feasible. However, due to the limitation of computing ability within single cluster, one can only generate three bands and a 1000*1000 pixels image in a reasonable time. In this paper, we discuss the capability of using Grid computing where the so-called eScience or cyberinfrastructure is utilized to integrate distributed computing resources to act as a single virtual computer with huge computational abilities and storage spaces. The technique demonstrated in this paper demonstrates the feasibility of a Grid-Enabled Monte Carlo Hyperspectral Synthetic Image Remote Sensing Model (GRID-MCHSIM) for coastal water quality algorithm.
机译:先前的研究表明,用于高光谱遥感图像生成的并行计算是可行的。但是,由于单个群集内计算能力的限制,一个人只能在合理的时间内生成三个波段和一个1000 * 1000像素的图像。在本文中,我们讨论了使用网格计算的能力,其中所谓的eScience或网络基础设施用于集成分布式计算资源,以充当具有巨大计算能力和存储空间的单个虚拟计算机。本文中演示的技术证明了用于沿海水质算法的网格启用蒙特卡洛高光谱合成图像遥感模型(GRID-MCHSIM)的可行性。

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