Expression recognition network training method and system combined with weak supervision, medium and terminal
A technology of facial expression recognition and network training, which is applied in the field of facial expression recognition, can solve the problems of small discrimination between expressions, inability to achieve accurate classification, and improvement of expression discrimination ability, so as to improve accuracy, improve accuracy and robustness sticky effect
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Embodiment 1
[0052] The present embodiment provides a method for training an expression recognition network combined with weak supervision. The expression recognition network includes a feature map extraction network, a feature extraction sub-network, a feature map matching sub-network and a classification sub-network; the method includes the following steps:
[0053] The feature map extraction network is trained; the steps of the training include:
[0054] Utilize the feature map extraction network to train the input facial expression image, to form the expression feature map of the specified expression and the expression feature map of the non-specified expression and the classification prediction probability respectively corresponding to the specified expression and the non-specified expression ;
[0055] Perform loss calculation according to the classification prediction probabilities of the specified expression and the non-specified expression, so as to obtain the loss degree of the f...
Embodiment 2
[0153] The present embodiment provides a network training system for expression recognition combined with weak supervision. The expression recognition network includes a feature map extraction network, a feature extraction sub-network, a feature map matching sub-network and a classification sub-network; the system includes: the first training module and a second training module;
[0154] The first training module is used to train the feature map extraction network; the training step includes using the feature map extraction network to train the input facial expression image to form the expression feature map of the specified expression and An expression feature map of an unspecified expression and a classification prediction probability respectively corresponding to the specified expression and the non-specified expression; according to the classification prediction probabilities of the specified expression and the non-specified expression, a loss calculation is performed to ob...
Embodiment 3
[0163] This embodiment provides a terminal, including: a processor and a memory;
[0164] The memory is used to store computer programs;
[0165] The processor is configured to execute the computer program stored in the memory, so that the terminal executes the above-mentioned expression recognition network training method combined with weak supervision.
[0166] see Figure 6 , is a schematic structural diagram of a terminal of the present invention in an embodiment. Such as Figure 6 As shown, the terminal of the present invention includes a processor 61 and a memory 62 .
[0167] The memory 62 is used to store computer programs. Preferably, the memory 62 includes various media capable of storing program codes such as ROM, RAM, magnetic disk, U disk, memory card or optical disk.
[0168] The processor 61 is connected to the memory 62, and is used to execute the computer program stored in the memory 62, so that the terminal executes the above-mentioned expression recogni...
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