FEATURE EXTRACTION SYSTEM, METHOD AND APPARATUS BASED ON NEURAL NETWORK OPTIMIZATION BY GRADIENT FILTERING

    公开(公告)号:US20210383239A1

    公开(公告)日:2021-12-09

    申请号:US17411131

    申请日:2021-08-25

    Abstract: A feature extraction system, method and apparatus based on neural network optimization by gradient filtering is provided. The feature extraction method includes: acquiring, by an information acquisition device, input information; constructing, by a feature extraction device, different feature extraction networks, performing iterative training on the networks in combination with corresponding training task queues to obtain optimized feature extraction networks for different input information, and calling a corresponding optimized feature extraction network to perform feature extraction according to a class of the input information; performing, by an online updating device, online updating of the networks; and outputting, by a feature output device, a feature of the input information. The new feature extraction system, method and apparatus avoids the problem of catastrophic forgetting of the artificial neural network in continuous tasks, and achieves high accuracy and precision in continuous feature extraction.

    INFORMATION PROCESSING METHOD, SYSTEM AND DEVICE BASED ON CONTEXTUAL SIGNALS AND PREFRONTAL CORTEX-LIKE NETWORK

    公开(公告)号:US20210056415A1

    公开(公告)日:2021-02-25

    申请号:US16971691

    申请日:2019-04-19

    Abstract: An information processing method based on contextual signals and a prefrontal cortex-like network includes: selecting a feature vector extractor based on obtained information to perform feature extraction to obtain an information feature vector; inputting the information feature vector into the prefrontal cortex-like network, and performing dimensional matching between the information feature vector and each contextual signal in an input contextual signal set to obtain contextual feature vectors to constitute a contextual feature vector set; and classifying each feature vector in the contextual feature vector set by a feature vector classifier to obtain classification information of the each feature vector to constitute a classification information set. An information processing system based on contextual signals and a prefrontal cortex-like network includes an acquisition module, a feature extraction module, a dimensional matching module, a classification module and an output module.

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