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MULTI-IMAGE MATCHING USING NEURAL NETWORKS AND PHOTOGRAMMETRIC CONDITIONS

机译:使用神经网络和摄影测量条件的多图像匹配

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Automatic determination of three dimensional information from digital images is a fundamental problem in digital photogrammetry and computer vision. The hardest part of the problem is finding conjugate points in two images. Despite the wealth of information contained in digital images, factors such as occlusion and discontinuity weaken several matching algorithms. However, image matching using more than a pair of stereo images enhance the reliability of the image matching process. This paper presents an alternative approach to match image points across several views. For each pair of images, the coplanarity condition and the correlation coefficient of image intensities are computed for each pair of image points. These two measures are feed into a feedforward neural network used to solve the multi-image correspondent. The collinearity condition is then used to validate the outputs of the neural network and to compute the 3D coordinates of the matched points. The detection rate of the neural network is about 95% to 98% and the false alarm rate is about 7% to 4%. In addition, the collinearity condition eliminated several of the incorrect matches and reduced the false alarm rate to less than 2%. The RMS errors of the ground coordinates are seven to eight centimetres.
机译:从数字图像自动确定三维信息是数字摄影测量和计算机视觉中的基本问题。问题的最困难的部分是在两个图像中找到共轭点。尽管数码图像中包含的丰富信息,但遮挡和不连续性等因素削弱了几种匹配算法。但是,使用多于一对立体图像的图像匹配增强了图像匹配过程的可靠性。本文介绍了替代方法,可以匹配几种视图的图像点。对于每对图像,对于每对图像点计算共面条状况和图像强度的相关系数。这两种措施将进入用于解决多图像对应的前馈神经网络。然后使用相对性条件来验证神经网络的输出并计算匹配点的3D坐标。神经网络的检出率约为95%至98%,误报率约为7%至4%。此外,共线条件消除了几个不正确的匹配,并将误报率降低至小于2%。地面坐标的RMS误差为7至8厘米。

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