首页> 外文会议>Conference on image and signal processing for remote sensing >Automated corresponding point candidate selection for image registration using wavelet transformation, neural network with rotation invariant inputs, and context information about neighbouring candidates
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Automated corresponding point candidate selection for image registration using wavelet transformation, neural network with rotation invariant inputs, and context information about neighbouring candidates

机译:使用小波变换,具有旋转不变输入的神经网络的图像注册的自动对应点候选选择,以及关于邻近候选的上下文信息

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An automated method that can select corresponding point candidates is developed. This method has the following three features: 1) employment of the RIN-net for corresponding point candidate selection; 2) employment of multi resolution analysis with Haar wavelet transformation for improvement of selection accuracy and noise tolerance; 3) employment of context information about corresponding point candidates for screening of selected candidates. Here, the "RIN-net" means the back-propagation trained feed-forward 3-layer artificial neural network that feeds rotation invariants as input data. In our system, pseudo Zernike moments are employed as the rotation invariants. The RIN-net has N * N pixels field of view (FOV). Some experiments are conducted to evaluate corresponding point candidate selection capability of the proposed method by using various kinds of remotely sensed images. The experimental results show the proposed method achieves fewer training patterns, less training time, and higher selection accuracy than conventional method.
机译:开发了一种可以选择相应点候选的自动方法。该方法具有以下三个特点:1)rin-net的就业,用于对应点候选选择; 2)采用HAAR小波变换的多分辨率分析,提高选择精度和噪声容差; 3)就筛选所选候选人的对应点候选人的上下文信息。这里,“RIN-NET”是指背部传播训练有素的前馈3层人工神经网络,其将旋转不变导致作为输入数据。在我们的系统中,伪Zernike时刻被用作旋转不变。 rin-net有n * n像素视野(fov)。通过使用各种远程感测图像来进行一些实验以评估所提出的方法的对应点候选选择能力。实验结果表明,所提出的方法达到较少的训练模式,较少的训练时间和比传统方法更高的选择精度。

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