Multi-modal human face recognition method based on deep learning
A face recognition and deep learning technology, applied in the field of face recognition, can solve problems such as low efficiency and insufficient expression ability, and achieve the effect of improving performance and fast and accurate face recognition
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[0022] Such as figure 1 Shown, the present invention specifically comprises the following steps:
[0023] (1) Perform face detection, feature point location, alignment, and cropping on the RGB face image, and make the cropped RGB mode face data set S0; then according to the RGB mode and other modes (such as depth information, Near-infrared information, etc.), find the feature points of other modal faces, and cut and make other modal face datasets S1, S2...;
[0024] (2) Design a multimodal fusion deep neural network structure N1. In this structure, the first half is several independent neural network branches, and the input of each branch corresponds to a modality (such as RGB modality, deep modality , NIR mode, etc.), and then use a specific network structure to fuse multiple modal branches into a synthetic neural network branch (such as connecting these features, or stacking them by channels, or other connection structures, such as attaching image 3 Such a structure, etc....
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