Face recognition method based on aggregate loss deep metric learning
A face recognition and metric learning technology, applied in neural learning methods, character and pattern recognition, instruments, etc., can solve problems such as reducing computational complexity and achieve the effect of avoiding difficult case mining
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[0045] Such as figure 1 As shown, the present embodiment is based on the face recognition method of aggregation loss depth metric learning, comprising the following steps:
[0046] Step S1, image preprocessing: Use the cascaded CNN detector to perform face detection and key point positioning on the training image, and perform operations such as rotation, scaling, and cropping according to the key point position to obtain an aligned 224*224 face Image patches, as input to the network.
[0047] In the present invention, the same preprocessing method is adopted for the training image and the image to be recognized, and Fig. 2(a) and (b) are the result diagrams of image preprocessing. Use the face detector to detect the face, and get 5 key points: left eye center, right eye center, nose center, left mouth corner and right mouth corner, perform similar transformation according to the position of the key points, and then perform operations such as scaling and cropping to get 224*2...
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