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Robust Affine Invariant Feature Extraction for Image Matching

机译:用于图像匹配的鲁棒仿射不变特征提取

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A new approach is presented to extract more robust affine invariant features for image matching. The novelty of our approach is a hierarchical filtering strategy for affine invariant feature detection, which is based on information entropy and spatial dispersion quality constraints. The concept of spatial dispersion quality is introduced to quantify the spatial distribution of features. Moreover, an integrated algorithm combined by the filtering strategy, maximally stable extremal region (MSER) and scale invariant feature transform, is introduced for affine invariant feature extraction. Since Mikolajczyk identified that MSER is the best detector in many cases, we design an experiment to compare our approach (ED-MSER) with the standard MSER. By using two stereo pairs and an image sequence with different types of imagery, the experiment indicates that ED-MSER can always get much higher repeatability and matching score compared to the standard MSER and other algorithms, thus benefiting the subsequent image matching and many other applications.
机译:提出了一种新方法来提取更鲁棒的仿射不变特征进行图像匹配。我们的方法的新颖性是一种仿射不变特征检测的分层过滤策略,该策略基于信息熵和空间色散质量约束。引入空间色散质量的概念来量化特征的空间分布。提出了一种结合滤波策略,最大稳定极值区域(MSER)和尺度不变特征变换的集成算法,用于仿射不变特征提取。由于Mikolajczyk确定在许多情况下MSER是最好的检测器,因此我们设计了一个实验,将我们的方法(ED-MSER)与标准MSER进行比较。通过使用两个立体声对和具有不同图像类型的图像序列,实验表明,与标准MSER和其他算法相比,ED-MSER总是可以获得更高的可重复性和匹配分数,从而有利于后续的图像匹配和许多其他应用。

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