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It Takes Two to Tango: Cascading off-the-Shelf Face Detectors

机译:探戈需要两个:落下搁板的面部探测器

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Recent face detection methods have achieved high detection rates in unconstrained environments. However, as they still generate excessive false positives, any method for reducing false positives is highly desirable. This work aims to massively reduce false positives of existing face detection methods whilst maintaining the true detection rate. In addition, the proposed method also aims to sidestep the detector retraining task which generally requires enormous effort. To this end, we propose a two-stage framework which cascades two off-the-shelf face detectors. Not all face detectors can be cascaded and achieve good performance. Thus, we study three properties that allow us to determine the best pair of detectors. These three properties are: (1) correlation of true positives; (2) diversity of false positives and (3) detector runtime. Experimental results on recent large benchmark datasets such as FDDB and WIDER FACE support our findings that the false positives of a face detector could be potentially reduced by 90% whilst still maintaining high true positive detection rate. In addition, with a slight decrease in true positives, we found a pair of face detector that achieves significantly lower false positives, while being five times faster than the current state-of-the-art detector.
机译:最近的面部检测方法在无约束环境中取得了高的检测率。然而,由于它们仍然产生过多的误报,因此非常需要任何减少误报的方法。这项工作旨在大量降低现有面部检测方法的误报,同时保持真正的检测率。此外,该方法还旨在索引探测器刷新任务,这通常需要巨大的努力。为此,我们提出了一个两级框架,它落下了两个现成的面部探测器。并非所有面部探测器都可以级联并实现良好的性能。因此,我们研究了三种属性,使我们能够确定最佳的探测器。这三个属性是:(1)真实阳性的相关性; (2)误报的多样性和(3)探测器运行时。近期大型基准数据集等实验结果,如FDDB和更广泛的面对面支持我们的发现,即面部检测器的误报可能会潜在地降低90%,同时仍保持高真正的阳性检测率。此外,在真正的阳性略有下降,我们发现了一对面部检测器,实现了显着较低的误报,而比当前最先进的探测器快五倍。

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