3D OBJECT DETECTION METHOD, MODEL TRAINING METHOD, RELEVANT DEVICES AND ELECTRONIC APPARATUS

    公开(公告)号:US20220222951A1

    公开(公告)日:2022-07-14

    申请号:US17709283

    申请日:2022-03-30

    Inventor: Xiaoqing Ye Hao Sun

    Abstract: A 3D object detection method includes: obtaining a first monocular image; and inputting the first monocular image into an object model, and performing a first detection operation to obtain first detection information in a 3D space, wherein the first detection operation includes performing feature extraction in accordance with the first monocular image to obtain a first point cloud feature, adjusting the first point cloud feature in accordance with a target learning parameter to obtain a second point cloud feature, and performing 3D object detection in accordance with the second point cloud feature to obtain the first detection information, wherein the target learning parameter is used to present a difference degree between the first point cloud feature and a target point cloud feature of the first monocular image.

    GENERATION OF VIRTUAL IDOL
    3.
    发明公开

    公开(公告)号:US20230290029A1

    公开(公告)日:2023-09-14

    申请号:US17964028

    申请日:2022-10-11

    Abstract: A method of generating a virtual idol is provided. The method includes: during obtaining of a virtual idol, feature information of a target object may be obtained, and then the feature information of the target object is used as a generation basis for the virtual idol, so that a target virtual face matching with the feature information may be determined from a preset face material library in a targeted manner, and a target motion video matching with the feature information may be determined from a preset motion video library; and then the virtual face and a facial image in the motion video are fused, which may generate the virtual idol for a scenario where the target object is endorsed, so that the virtual idol may subsequently be used to endorse the target object.

    METHOD AND APPARATUS FOR DETECTING OBJECT BASED ON VIDEO, ELECTRONIC DEVICE AND STORAGE MEDIUM

    公开(公告)号:US20230009547A1

    公开(公告)日:2023-01-12

    申请号:US17933271

    申请日:2022-09-19

    Abstract: A method for detecting an object based on a video includes: obtaining a plurality of image frames of a video to be detected; obtaining initial feature maps by extracting features of the plurality of image frames; for each two adjacent image frames of the plurality of image frames, obtaining a target feature map of a latter image frame of the two adjacent image frames by performing feature fusing on the sub-feature maps of the first target dimensions included in the initial feature map of a former image frame of the two adjacent image frames and the sub-feature maps of the second target dimensions included in the initial feature map of the latter image frame; and performing object detection on the respective target feature map of each image frame.

    METHOD AND APPARATUS FOR RECOGNIZING ACTION, DEVICE AND MEDIUM

    公开(公告)号:US20220360796A1

    公开(公告)日:2022-11-10

    申请号:US17870660

    申请日:2022-07-21

    Abstract: A method and apparatus for recognizing an action. The method includes: acquiring a target video; determining action categories corresponding to the target video; determining, for each action category, a pre-action-conversion video frame and post-action-conversion video frame corresponding to the action category from the target video; and determining a number of actions corresponding to the each action category based on the pre-action-conversion video frame and post-action-conversion video frame corresponding to the each action category.

    THREE-DIMENSIONAL RECONSTRUCTION METHOD, THREE-DIMENSIONAL RECONSTRUCTION APPARATUS, DEVICE AND STORAGE MEDIUM

    公开(公告)号:US20220343603A1

    公开(公告)日:2022-10-27

    申请号:US17862588

    申请日:2022-07-12

    Abstract: Three-dimensional reconstruction method, three-dimensional reconstruction apparatus, device, and storage medium are provided. An implementation of the method may include: determining, based on an initial three-dimensional human body model, a target two-dimensional image corresponding to the three-dimensional human body model; semantically segmenting the target two-dimensional image, and determining semantic labels of pixels in the target two-dimensional image; determining semantic labels of skinned mesh vertices according to corresponding relationships between the skinned mesh vertices in the initial three-dimensional human body model and the pixels in the target two-dimensional image; determining target weights of the skinned mesh vertices according to the semantic labels of the skinned mesh vertices; and determining a target three-dimensional human body model according to the target weights.

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