Video facial expression early detection method based on multi-instance learning
A multi-instance learning, facial expression technology, applied in neural learning methods, instruments, biological neural network models, etc., can solve problems such as the inability to realize real-time expression detection, and achieve the effect of improving accuracy and timeliness
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[0056] This embodiment provides a method for pre-detection of video facial expressions MIEFD based on multi-instance learning, such as figure 1 shown, including the following steps:
[0057] (1) Preprocess the video data of the training sample and the sample to be tested, and extract the face area of each frame image in the video. This step specifically includes:
[0058] (1-1) For the video data of the training sample and the sample to be tested, the Deep Convolutional Network Cascade proposed by Wang Xiaogang et al. in CVPR13 is used to extract 5 key points of the face in each frame of the video. Point position coordinates, including the two eyes, the tip of the nose and the left and right corners of the mouth.
[0059] Facial key point detection is very important for face analysis and recognition. The paper "Deep Convolutional Network Cascade for Facial Point Detection" published by Wang Xiaogang et al. on CVPR13 proposed a cascaded regression of a three-level convoluti...
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