首页> 外文会议>Tiangong-2 data utilization conference >Image Geometric Correction Parallelization of the Multi-azimuth UV Imager Based on GPU
【24h】

Image Geometric Correction Parallelization of the Multi-azimuth UV Imager Based on GPU

机译:基于GPU的多方位角UV成像器的图像几何校正并行化

获取原文

摘要

The Multi-Azimuth UV Imager (MAVI) is designed and built by Chinese scientific institute independently. The MAVI is comprised of the ultraviolet ring imager and the ultraviolet forward imager. One track of image of ultraviolet ring imager contains hundreds of standard image frames arranged along the track direction and possesses relatively higher data volume. To produce the standard level-one product rapidly, the entire procedure of geometric correction was decomposed into parameter parsing, data reading into memory, model of geometric correction, and data exporting to hard disk. Among these four steps of ultraviolet ring imager image processing, the construction and calculating of geometric correction model is the most time consuming. There exist several for loops in steps of geometric positioning and vector calculating. Simultaneously, the majority of C code of geometric positioning and vector calculating should be rewritten to adapt the CUDA GPU in this practice. Experimental results show that parallelized geometric correction could reach a speedup of 3.2 through image partition along the column direction on GPU. A better speedup result of URI image processing would be achieved through parallelizing all for loops in every step.
机译:多边形UV成像仪(MAVI)由中国科学研究所独立设计和建造。 MAVI由紫外线成像器和紫外线成像器组成。紫外线成像器的一条轨道包含沿轨道方向排列的数百个标准图像框架,并具有相对较高的数据量。要快速生产标准级别产品,几何校正的整个过程被分解为参数解析,数据读入内存,几何校正模型以及数据导出到硬盘。在这四个步骤的紫外环成像图像处理中,几何校正模型的构造和计算是最耗时的。在几何定位和向量计算的步骤中存在几个循环。同时,应该重写几何定位和向量计算的大部分C代码,以在这种做法中调整CUDA GPU。实验结果表明,并行化几何校正可以通过沿着GPU的列方向的图像分区达到3.2的加速。通过在每一步中的所有循环并行化,将实现URI图像处理的更好的加速结果。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号