基于SURF的图像自动拼接改进方法

Niu Jing, Yang Fan, Shi Lingyi
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引用次数: 8

摘要

图像拼接是将同一场景的多个图像拼接成一个大图像的过程。传统方法对图像序列有限制,拼接精度较低。为了获得更好的拼接效果,特别是在需要更可靠、更高拼接精度的医学图像处理中,本文提出了一种基于SURF (accelerated Robust Feature)的图像自动拼接改进方法。在混合图像集中,首先利用相位相关估计两幅图像是否重叠,确定重叠图像之间的关系,然后采用SURF算法对重叠部分的特征进行提取和匹配,最后改进图像融合策略,采用逐帧扩展拼接法得到全景图像。实验结果表明,该方法具有较好的鲁棒性,计算特征的精度较高,可以实现相同场景图像的平滑过渡。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Improved method of automatic image stitching based on SURF
Image stitching is a process of assembling images of same scene into a large image. Traditional approaches usually have restrictions on the image sequence and stitching precision is low. For a better stitching result, especially in medical image processing, which needs more reliable and higher stitching precision, this paper proposes an improved method of automatic image stitching based on SURF (Speeded Up Robust Feature). In a mixed image set, we first use phase correlation to estimate if two images overlapped, and ascertain the relationship of the overlapping images, then adopt SURF algorithm to extract and match features in the overlapping parts, and at last improve image fusion strategy and use frame-by-frame expanded mosaic method to get panorama image. The experimental results show that our method is robust, which computes features with higher precision and can realize the smooth transition in images of same scenes.
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