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Smile Detection by Boosting Pixel Differences

机译:通过提高像素差异来进行微笑检测

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Smile detection in face images captured in unconstrained real-world scenarios is an interesting problem with many potential applications. This paper presents an efficient approach to smile detection, in which the intensity differences between pixels in the grayscale face images are used as features. We adopt AdaBoost to choose and combine weak classifiers based on intensity differences to form a strong classifier. Experiments show that our approach has similar accuracy to the state-of-the-art method but is significantly faster. Our approach provides 85% accuracy by examining 20 pairs of pixels and 88% accuracy with 100 pairs of pixels. We match the accuracy of the Gabor-feature-based support vector machine using as few as 350 pairs of pixels.
机译:在不受限制的真实场景中捕获的面部图像中的笑容检测是许多潜在应用程序中的一个有趣问题。本文提出了一种有效的笑容检测方法,其中将灰度面部图像中像素之间的强度差用作特征。我们采用AdaBoost来基于强度差异选择和组合弱分类器以形成强分类器。实验表明,我们的方法具有与最新方法相似的准确性,但速度明显更快。我们的方法通过检查20对像素提供了85%的精度,而对100对像素则提供了88%的精度。我们使用少至350对像素匹配基于Gabor特征的支持向量机的精度。

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