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基于多张影像匹配的DSM自动生成方法

袁修孝 明洋   

  • 收稿日期:1900-01-01 修回日期:1900-01-01 发布日期:2019-01-01

Automatic Generation Methodology of Digital Surface Model Based on Multiple Image Matching

  • Received:1900-01-01 Revised:1900-01-01 Published:2019-01-01

摘要:

本文提出了一种综合利用像方和物方信息的多张影像匹配生成DSM方法。首先通过基准影像与各搜索影像的匹配得到每个立体像对上的可能同名候选点,然后经对各立体像对匹配结果的物方融合,部分剔除误匹配点,获得较为精确的物方空间信息,以用于下层金字塔影像的匹配。在影像匹配过程中,融入了带几何约束条件的相关系数法匹配和整体松弛法匹配策略。通过对某地区一组大重叠度航空数码影像的试验,证实了方法的有效性。结果表明,由3张影像匹配所生成的DSM相对于传统只用两张影像匹配生成的DSM精度有了明显提高。但随着参与匹配影像数目的增加,无论是影像匹配的成功率还是所生成的DSM精度都不会再有显著的改善。

Abstract:

This paper proposes a method of digital surface model (DSM) generation based on the multiple-aerial-image matching, which can comprehensively make use of the information from the image- and object- space. Firstly, through matching between the reference image and each slave image, any possible candidate in each stereo pair can be considered, and this guarantees the full use of the image photometrical information; then the matching results from all stereo pairs are merged in the object space, which can partially detect and eliminate mismatching points in each stereo pair, to provide more accurate spatial information to restrict and guide the matching in the next pyramid level. In the process of matching, the geometrically constrained normalized cross-correlation matching and global relaxation optimization strategy are incorporated. Some experiments were made on a set of large overlap aerial digital frame imagery of some area to validate the method. The results have shown that comparing to the accuracy of DSM generated by two images, the accuracy by three images has been improved evidently, but along with the number of the slave image increases, the matching success ratio as well as the accuracy of the DSM will not again have the remarkable improvement.