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Effective Cue Integration for Fast and Robust Face Detection in Videos

机译:有效的提示集成,可实现视频中快速而稳健的人脸检测

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We propose a novel framework using multimodal cues effectively and efficiently for a fast and robust detection of human faces in video images. Proper integration of cues may allow for both acceleration of the process and reducing the false positive errors while retaining a high rate of detection. In our algorithm, we integrated three salient cues based on motion, color, and appearance which are complementary features characterizing the face. For efficient integration of the cues, the sequence of images is processed in two stages: pre-attentive stage and post-attentive stage. In particular, a decision maker in pre-attentive stage is proposed to minimize the processing time, which switches the route of the information flow of the process according to the current scene properties. With proper sequential usage of the three multimodal cues depending on scene properties, the proposed method outperforms conventional approaches in terms of detection rate, false positives, and computational cost by reducing markedly the search space and search scale of the appearance-based face detector with low computational cost.
机译:我们提出了一种新颖的框架,该框架有效且高效地使用了多模式提示,可快速,可靠地检测视频图像中的人脸。提示的正确集成既可以加快处理速度,又可以减少误报错误,同时又能保持较高的检测率。在我们的算法中,我们基于运动,颜色和外观整合了三个显着线索,它们是面部特征的补充特征。为了有效整合提示,图像序列会分两个阶段进行处理:注意前阶段和注意后阶段。特别地,提出了处于预注意阶段的决策者以最小化处理时间,其根据当前场景属性来切换过程的信息流的路径。在根据场景属性正确使用三个多模态线索的情况下,通过显着降低基于外观的面部检测器的搜索空间和搜索范围,该方法在检测率,误报和计算成本方面优于传统方法。计算成本。

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