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A high-speed feature matching method of high-resolution aerial images

机译:高分辨率空中图像的高速特征匹配方法

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This paper presents a novel corner detection and scale estimation algorithm for image feature description and matching. Inspired by Adaboost's weak classifier, a series of sub-detectors is elaborately designed to obtain reliable corner pixels. The new corner detection algorithm is more robust than the FAST and HARRIS algorithm, and it is especially suitable for the implementation in FPGA. The new scale estimation method can be directly implemented in the original image without building Gaussian pyramid and searching max response value in each level, which not only increase computational efficiency but also greatly reduces memory requirement. Based on the proposed algorithm, a CPU-FPGA cooperative parallel processing architecture is presented. The architecture overcomes the memory space limitation of FPGA and achieves high-speed feature matching for massive high-resolution aerial images. The speed of the CPU-FPGA cooperative process is hundred times faster than SIFT algorithm running on CPU, and dozens of times faster than SIFT running in CPU + GPU system.
机译:本文介绍了一种新的图像特征描述和匹配的角色检测和比例估计算法。灵感灵感来自Adaboost弱分类器,一系列的子探测器是精心设计的,以获得可靠的角落像素。新的角度检测算法比快速和哈里斯算法更强大,特别适用于FPGA的实现。新的估计方法可以在原始图像中直接实现,而无需构建高斯金字塔并在每个级别中搜索最大响应值,这不仅提高计算效率,而且大大降低了内存要求。基于所提出的算法,提出了CPU-FPGA协作并行处理架构。该架构克服了FPGA的存储空间限制,实现了大量高分辨率空中图像的高速特征匹配。 CPU-FPGA协作过程的速度比CPU上运行的SIFT算法快百倍,而不是CPU + GPU系统中的速度速度快。

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