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Neural adaptive stereo matching

机译:神经自适应立体声匹配

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摘要

The present work investigates the potential of neural adaptive learning to solve the correspondence problem within a two-frame adaptive area matching approach. A novel method is proposed based on the use of the zero mean normalized cross-correlation coefficient integrated within a neural network model which uses a least-mean-square delta rule for training. Two experiments were conducted for evaluating the neural model proposed. The first aimed to produce dense disparity maps based on the analysis of standard test images. The second experiment, conducted in the biomedical field, aimed to model 3D surfaces from a varied set of scanning electron microscope stereoscopic image pairs.
机译:本工作研究了神经自适应学习解决两帧自适应区域匹配方法中的对应问题的潜力。提出了一种新方法,该方法是基于将神经网络模型中的零均值归一化互相关系数集成在一起,该模型使用最小均方差增量规则进行训练。进行了两个实验以评估所提出的神经模型。第一个旨在基于对标准测试图像的分析来生成密集的视差图。在生物医学领域进行的第二个实验旨在从一组不同的扫描电子显微镜立体图像对中建模3D表面。

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