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SSFD: A Face Detector using A Single-scale Feature Map

机译:SSFD:使用单级特征图的脸部探测器

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摘要

In this paper, we present a simple but effective face detector (dubbed SSFD), which can localize multi-scale faces. Unlike other multi-scale feature detectors which learn multi-scale features or feature pyramids aggregated from different scale feature maps, SSFD only depends on a single-scale input image and a single-scale feature map to detect faces of various scales. In SSFD, transposed convolutions are leveraged to increase the resolution of feature maps with different strides, which can maintain adequate information for occluded and small faces. In addition, dilated convolutions are deployed to increase the receptive field size, which contributes to obtaining discriminative contextual information. SSFD, which is based on the VGG-16 network, outperforms the ResNet101-based Scale-Face as well as the VGG16-based HR on the WIDER FACE validation dataset.
机译:在本文中,我们提出了一种简单但有效的面部探测器(被称为SSFD),可以定位多尺度面。与其他多尺度特征检测器不同,该多尺度特征检测器从不同刻度特征映射聚合的多尺度特征或特征金字塔,SSFD仅取决于单尺度输入图像和单尺度的特征映射,以检测各种尺度的面部。在SSFD中,利用转换卷积来增加具有不同进展的特征地图的分辨率,这可以维持堵塞和小面的充分信息。此外,部署扩张的卷积以增加接受场大小,这有助于获得判别的上下文信息。 SSFD基于VGG-16网络,优于基于ResET101的刻度面以及基于VGG16的HR在更广泛的面部验证数据集上。

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