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Acceleration Techniques and Evaluation on Multicore CPU, GPU and FPGA for Image Processing and Super-Resolution

机译:用于图像处理和超分辨率的多核CPU,GPU和FPGA的加速技术和评估

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摘要

Super-Resolution (SR) techniques constitute a key element in image applications, which need high- resolution reconstruction while in the worst case only a single low-resolution observation is available. SR techniques involve computationally demanding processes and thus researchers are currently focusing on SR performance acceleration. Aiming at improving the SR performance, the current paper builds up on the characteristics of the L-SEABI Super-Resolution (SR) method to introduce parallelization techniques for GPUs and FPGAs. The proposed techniques accelerate GPU reconstruction of Ultra-High Definition content, by achieving three (3x) times faster than the real-time performance on mid-range and previous generation devices and at least nine times (9x) faster than the real-time performance on high-end GPUs. The FPGA design leads to a scalable architecture performing four (4x) times faster than the real-time on low-end Xilinx Virtex 5 devices and sixty-nine times (69x) faster than the real-time on the Virtex 2000t. Moreover, we confirm the benefits of the proposed acceleration techniques by employing them on a different category of image-processing algorithms: on window-based Disparity functions, for which the proposed GPU technique shows an improvement over the CPU performance ranging from 14 times (14x) to 64 times (64x) while the proposed FPGA architecture provides 29x acceleration.
机译:超分辨率(SR)技术是图像应用程序中的关键要素,需要高分辨率的重建,而在最坏的情况下,只有一个低分辨率的观测值可用。 SR技术涉及对计算要求很高的过程,因此研究人员目前将重点放在SR性能加速上。为了提高SR性能,本论文建立在L-SEABI超分辨率(SR)方法的特性基础上,以介绍用于GPU和FPGA的并行化技术。所提出的技术通过使中端和上一代设备的实时性能快三倍(3倍),并且比实时性能快至少九倍(9倍),从而加快了GPU重建超高清内容的速度。在高端GPU上。通过FPGA设计,可扩展架构的性能比低端Xilinx Virtex 5器件的实时性能快四(4x)倍,比Virtex 2000t的实时性能快六十九倍(69x)。此外,我们通过在不同类别的图像处理算法上使用建议的加速技术来确认所建议的加速技术的好处:在基于窗口的视差函数上,针对这些函数,所建议的GPU技术显示出CPU性能提高了14倍(14x )提高到64倍(64倍),而拟议的FPGA架构提供了29倍的加速。

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