DATA PROCESSING METHOD AND APPARATUS

    公开(公告)号:US20230048031A1

    公开(公告)日:2023-02-16

    申请号:US17964165

    申请日:2022-10-12

    Abstract: Relating to the field of artificial intelligence, and specifically relating to the field of natural language processing, a data processing method includes and an apparatus performs: determining original text samples, where masking processing is not performed on the original text samples; and performing mask processing on the original text samples to obtain mask training samples, where the mask processing makes mask proportions of the mask training samples unfixed, and the mask training samples each are used to train a pretrained language model PLM. Training the PLM by using the mask training samples whose mask proportions are unfixed can enhance mode diversity of the training samples of the PLM. Therefore, features learned by the PLM are also diversified, a generalization capability of the PLM can be improved, and a natural language understanding capability of the PLM obtained through training can be improved.

    DATA PROCESSING METHOD AND RELATED DEVICE
    3.
    发明公开

    公开(公告)号:US20240046067A1

    公开(公告)日:2024-02-08

    申请号:US18380581

    申请日:2023-10-16

    CPC classification number: G06N3/04

    Abstract: A data processing method includes: obtaining a first embedding vector for indicating a known data unit and a position of the known data unit and a second embedding vector for indicating a position of a to-be-predicted data unit; processing the first embedding vector by using a target encoder, to obtain an output vector; and processing the output vector and the second embedding vector by using a target prediction network, to obtain a to-be-predicted data unit. According to the method, M pieces of additional position information do not need to be separately set as input of the target encoder, and a quantity of latent variables of intermediate output of the target encoder is also consistent with a quantity of input embedding vectors, thereby reducing a computation amount and memory consumption of the target encoder.

    MODEL TRAINING METHOD AND APPARATUS
    4.
    发明公开

    公开(公告)号:US20230177410A1

    公开(公告)日:2023-06-08

    申请号:US18161620

    申请日:2023-01-30

    CPC classification number: G06N20/20 G06F9/54

    Abstract: A model training method applied to the field of artificial intelligence is disclosed. The method includes: sending a first submodel to a first device, where the first submodel is obtained by compressing a to-be-trained model; receiving a first gradient sent by the first device, where the first gradient is obtained when the first device trains the first submodel; and performing model training on the to-be-trained model based on at least the first gradient, to obtain an updated to-be-trained model. In the method, a server compresses the to-be-trained model and delivers the to-be-trained model to a terminal device, so that the terminal device does not need to train a large model with a same scale as that of the server.

    TEXT DATA PROCESSING METHOD, NEURAL-NETWORK TRAINING METHOD, AND RELATED DEVICE

    公开(公告)号:US20240220730A1

    公开(公告)日:2024-07-04

    申请号:US18604138

    申请日:2024-03-13

    CPC classification number: G06F40/30

    Abstract: A text data processing method, a neural-network training method, and related devices are provided. The methods may be applied to the text data processing field in the artificial intelligence field. The method includes: obtaining a to-be-processed text, where the to-be-processed text includes a plurality of characters; and processing the to-be-processed text by using a target model to obtain a prediction result, where the prediction result indicates to split the to-be-processed text into a plurality of target character sets, the prediction result further includes a plurality of first labels, one first label indicates semantics of one target character set, and the plurality of first labels are used to determine an intention of the to-be-processed text.

    TEXT PROCESSING METHOD, MODEL TRAINING METHOD, AND APPARATUS

    公开(公告)号:US20220147715A1

    公开(公告)日:2022-05-12

    申请号:US17526832

    申请日:2021-11-15

    Abstract: This application relates to the field of artificial intelligence, and provides a text processing method, a model training method, and an apparatus. The method includes: obtaining target knowledge data; processing the target knowledge data to obtain a target knowledge vector; processing to-be-processed text to obtain a target text vector; fusing the target text vector and the target knowledge vector based on a target fusion model, to obtain a fused target text vector and a fused target knowledge vector; and processing the fused target text vector and/or the fused target knowledge vector based on a target processing model, to obtain a processing result corresponding to a target task. The foregoing technical solution can improve accuracy of a result of processing a target task by the target processing model.

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