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Street Detection with Asymmetric Haar Features

机译:具有非对称Haar功能的街道检测

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We present a system for object detection applied to street detection in satellite images. Our system is based on asymmetric Haar features. Asymmetric Haar features provide a rich feature space, which allows to build classifiers that are accurate and much simpler than those obtained with other features. The extremely large parameter space of potential features is explored using a genetic algorithm. Our system uses specialized detectors in different street orientations that are built using AdaBoost and the C4.5 rule induction algorithm. Experimental results show that Asymmetric Haar features are better than basic Haar features for street detection.
机译:我们提出了一种对象检测系统,该系统应用于卫星图像中的街道检测。我们的系统基于不对称的Haar特征。非对称Haar特征提供了丰富的特征空间,与其他特征获得的分类器相比,它可以构建准确且简单得多的分类器。使用遗传算法探索了潜在特征的极大参数空间。我们的系统使用沿不同街道方向的专用检测器,这些检测器是使用AdaBoost和C4.5规则感应算法构建的。实验结果表明,对于街道检测,非对称Haar特征优于基本Haar特征。

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