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An efficient systolic array grid-based structure of the robust Bayesian regularization technique for real-time enhanced imaging in uncertain remote sensing environment

机译:鲁棒贝叶斯正则化技术的有效脉动阵列网格结构,用于不确定遥感环境中的实时增强成像

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摘要

In this paper, we address a hardware implementation of the efficient robust Bayesian regularization architecture for the real-time enhancement of large-scale remote sensing (RS) imaging. The efficient sense of the proposed architecture is related to the high-performance embedded implementation that is achieved with the aggregation of parallel computing and systolic array design techniques in a novel grid connected-based accelerator. Then, the developed high-speed accelerator is integrated with an embedded processor via the HW/SW co-design paradigm. The presented approach is used for solving RS image enhancement/reconstruction of the ill-conditioned inverse spatial spectrum pattern estimation problems via an interesting low-cost high-performance embedded computing solution. Finally, we show the achieved results and how we drastically reduced the computational load for real-world large-scale geospatial images.
机译:在本文中,我们解决了用于实时增强大规模遥感(RS)成像的高效鲁棒贝叶斯正则化体系结构的硬件实现。所提出的体系结构的有效意义与高性能嵌入式实现有关,该实现是通过在基于网格连接的新型加速器中并行计算和脉动阵列设计技术的集成而实现的。然后,通过硬件/软件协同设计范例将开发的高速加速器与嵌入式处理器集成在一起。提出的方法用于通过有趣的低成本高性能嵌入式计算解决方案来解决病态逆空间频谱模式估计问题的RS图像增强/重建。最后,我们展示了所获得的结果以及我们如何极大地减少了现实世界中大规模地理空间图像的计算量。

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