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Research on cubic convolution interpolation parallel algorithm based on GPU

机译:基于GPU的三次卷积插值并行算法研究

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The traditional cubic convolution algorithm has to confront with the problems of large operational scale and slow efficiency, when used to realize the remote sensing image magnification. In this paper, GPU, as a burgeoning high performance computing technique, is proposed to parallel processing the traditional cubic convolution, which we call the Cubic Convolution Parallel Algorithm (CCPA). This algorithm that divides the pixels points equally to each block, guarantees each pixel point is executed by a thread and threads are executed simultaneously in GPU, improving the interpolation efficiency greatly. The experimental results show that compared with the traditional cubic convolution algorithm, this algorithm not only increases the calculation speed, but also achieves high quality image after zooming. Meanwhile, with the growth of image resolution, the advantages of the algorithm become more and more obvious, for instance, to the image of 10240 ∗ 10240 resolutions, the speed processed by GPU is 97.7% higher than that by CPU. Moreover, this algorithm also has profound practical value for remote sensing image processing under some emergency situations such as earthquakes, floods and other disasters, with the characteristic of good image quality and realtime mechanism.
机译:传统的三次卷积算法在实现遥感图像放大时必须面对操作规模大,效率低的问题。在本文中,提出了GPU作为一种新兴的高性能计算技术,以并行处理传统三次卷积,我们将其称为三次卷积并行算法(CCPA)。该算法将像素点平均分配给每个块,确保每个像素点由一个线程执行,并且线程在GPU中同时执行,从而大大提高了插值效率。实验结果表明,与传统三次卷积算法相比,该算法不仅提高了计算速度,而且在缩放后可以获得高质量的图像。同时,随着图像分辨率的提高,算法的优势变得越来越明显,例如,对于10240×10240分辨率的图像,GPU处理的速度比CPU处理的速度高97.7%。此外,该算法具有良好的图像质量和实时机制,在地震,洪水,其他灾害等紧急情况下,对于遥感图像的处理也具有深远的实用价值。

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