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SmileNet: Registration-Free Smiling Face Detection In The Wild

机译:SmileNet:无需注册的野性笑脸检测

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We present a novel smiling face detection framework called SmileNet for detecting faces and recognising smiles in the wild. SmileNet uses a Fully Convolutional Neural Network (FCNN) to detect multiple smiling faces in a given image of varying resolution. Our contributions are threefold: 1) SmileNet is the first smiling face detection network that does not require pre-processing such as face detection and registration in advance to generate a normalised (cropped and aligned) input image; 2) the proposed SmileNet is a simple and single FCNN architecture simultaneously performing face detection and smile recognition, which are conventionally treated as separate consecutive pipelines; and 3) SmileNet ensures real-time processing speed (21:15 FPS) even when detecting multiple smiling faces in a given image (300×300). Experimental results show that SmileNet can deliver state-of-the-art performance (95:76%), even under occlusions, and variances of pose, scale, and illumination.
机译:我们提出了一种名为SmileNet的新颖笑脸检测框架,用于检测脸部并在野外识别笑容。 SmileNet使用完全卷积神经网络(FCNN)来检测给定分辨率不同的图像中的多个笑脸。我们的贡献有三点:1)SmileNet是第一个不需要预先进行面部检测和配准等预处理即可生成标准化(裁剪并对齐)输入图像的笑脸检测网络; 2)提出的SmileNet是同时执行人脸检测和微笑识别的简单且单一的FCNN架构,通常将其视为独立的连续管道; 3)SmileNet即使在给定图像(300×300)中检测到多个笑脸时,也可以确保实时处理速度(21:15 FPS)。实验结果表明,即使在遮挡,姿势,比例和照明变化的情况下,SmileNet仍可以提供最先进的性能(95:76 \%)。

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