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An Algorithm for the Detection of Faces on the Basis of Gabor Features and Information Maximization

机译:基于Gabor特征和信息最大化的人脸检测算法

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摘要

We propose an algorithm for the detection of facial regions within input images. The characteristics of this algorithm are (1) a vast number of Gabor-type features (196,800) in various orientations, and with various frequencies and central positions, which are used as feature candidates in representing the patterns of an image, and (2) an information maximization principle, which is used to select several hundred features that are suitable for the detection of faces from among these candidates. Using only the selected features in face detection leads to reduced computational cost and is also expected to reduce generalization error. We applied the system, after training, to 42 input images with complex backgrounds (Test Set A from the Carnegie Mellon University face data set). The result was a high detection rate of 87.0%, with only six false detections. We compared the result with other published face detection algorithms.
机译:我们提出了一种用于检测输入图像中的面部区域的算法。该算法的特征是(1)各种方向,频率和中心位置不同的大量Gabor型特征(196,800),它们被用作表示图像图案的特征候选者,以及(2)一种信息最大化原理,用于从这些候选对象中选择数百个适合于面部检测的特征。在脸部检测中仅使用选定的特征会导致计算成本降低,并且还有望减少泛化误差。经过培训,我们将系统应用于具有复杂背景的42幅输入图像(来自卡耐基梅隆大学人脸数据集的测试集A)。结果是高达87.0%的检测率,只有6次错误检测。我们将结果与其他已发布的面部检测算法进行了比较。

著录项

  • 来源
    《Neural computation》 |2004年第6期|p. 1163-1191|共29页
  • 作者

    Hitoshi Imaoka; Kenji Okajima;

  • 作者单位

    Multimedia Research Laboratories, NEC Corporation, Miyamaeku, Kawasaki, Kanagawa, 216-8555 Japan;

    Fundamental Research Laboratories, NEC Corporation, Tsukuba, 305-8501 Japan;

  • 收录信息 美国《科学引文索引》(SCI);美国《化学文摘》(CA);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 人工智能理论;
  • 关键词

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