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An efficient geosciences workflow on multi-core processors and GPUs: a case study for aerosol optical depth retrieval from MODIS satellite data

机译:在多核处理器和GPU上进行有效的地球科学工作流程:从MODIS卫星数据中获取气溶胶光学深度的案例研究

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摘要

Quantitative remote sensing retrieval algorithms help understanding the dynamic aspects of Digital Earth. However, the Big Data and complex models in Digital Earth pose grand challenges for computation infrastructures. In this article, taking the aerosol optical depth (AOD) retrieval as a study case, we exploit parallel computing methods for high efficient geophysical parameter retrieval. We present an efficient geocomputation workflow for the AOD calculation from the Moderate Resolution Imaging Spectroradiometer (MODIS) satellite data. According to their individual potential for parallelization, several procedures were adapted and implemented for a successful parallel execution on multi-core processors and Graphics Processing Units (GPUs). The benchmarks in this paper validate the high parallel performance of the retrieval workflow with speedups of up to 5.x on a multi-core processor with 8 threads and 43.x on a GPU. To specifically address the time-consuming model retrieval part, hybrid parallel patterns which combine the multi-core processor’s and the GPU’s compute power were implemented with static and dynamic workload distributions and evaluated on two systems with different CPU–GPU configurations. It is shown that only the dynamic hybrid implementation leads to a greatly enhanced overall exploitation of the heterogeneous hardware environment in varying circumstances.
机译:定量遥感检索算法有助于理解数字地球的动态方面。但是,数字地球中的大数据和复杂模型给计算基础架构带来了巨大挑战。在本文中,以气溶胶光学深度(AOD)检索为研究案例,我们利用并行计算方法进行高效的地球物理参数检索。我们提出了一种有效的地球计算工作流程,用于根据中分辨率成像光谱仪(MODIS)卫星数据进行AOD计算。根据它们潜在的并行化潜力,为成功在多核处理器和图形处理单元(GPU)上成功并行执行,对几种过程进行了修改和实施。本文中的基准测试验证了检索工作流程的高并行性能,在具有8个线程的多核处理器上以及在GPU上的43.x上,提速高达5.x。为了专门解决耗时的模型检索部分,结合了多核处理器和GPU的计算能力的混合并行模式是通过静态和动态工作负载分布实现的,并在具有不同CPU-GPU配置的两个系统上进行了评估。结果表明,只有动态混合实现才能在不同情况下大大提高对异构硬件环境的总体利用。

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