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An improved Haar-like feature for efficient object detection

机译:改进的类似Haar的功能,可进行有效的物体检测

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In this paper, we propose an improved feature descriptor, Haar Contrast Feature, for efficient object detection under various illumination conditions. The proposed feature uses the same prototypes of Haar-like feature and computes contrast using the normalization factor devised to reflect the average intensity of feature region. It is computed efficiently using an integral image and is more powerful in real-time applications by not requiring variance normalization during detection process. It shows improved performance under a wide range of illumination conditions. For experiments, classifiers for face, pedestrian, and vehicle were trained by employing the conventional Haar-like feature with/without variance normalization, the local binary pattern descriptor, and the proposed feature descriptor, and their performances were evaluated. Experimental results confirm that classifiers employing the proposed feature descriptor outperform those employing the conventional Haar-like feature or the local binary pattern descriptor in terms of detection accuracy under most illumination conditions.
机译:在本文中,我们提出了一种改进的特征描述符Haar对比度特征,用于在各种光照条件下进行有效的物体检测。拟议的特征使用与Haar样的特征相同的原型,并使用旨在反映特征区域平均强度的归一化因子计算对比度。它使用积分图像进行有效计算,并且由于在检测过程中不需要方差归一化,因此在实时应用中功能更加强大。它在广泛的照明条件下显示出改进的性能。对于实验,通过使用具有/不具有方差归一化的常规类似Haar的特征,局部二进制模式描述符和建议的特征描述符来训练针对人脸,行人和车辆的分类器,并评估了它们的性能。实验结果证实,在大多数照明条件下,采用拟议特征描述符的分类器在检测精度方面优于采用常规Haar状特征或局部二进制模式描述符的分类器。

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