Invention Grant
- Patent Title: Efficient human pose tracking in videos
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Application No.: US17660462Application Date: 2022-04-25
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Publication No.: US11783494B2Publication Date: 2023-10-10
- Inventor: Yuncheng Li , Linjie Luo , Xuecheng Nie , Ning Zhang
- Applicant: Snap Inc.
- Applicant Address: US CA Santa Monica
- Assignee: Snap Inc.
- Current Assignee: Snap Inc.
- Current Assignee Address: US CA Santa Monica
- Agency: Schwegman Lundberg & Woessner, P.A.
- Main IPC: G06T7/246
- IPC: G06T7/246 ; G06T7/73 ; G06V20/40 ; G06V10/764 ; G06V10/82 ; G06V40/20 ; G06F3/04817 ; H04L51/04 ; H04L67/01

Abstract:
Systems, devices, media and methods are presented for a human pose tracking framework. The human pose tracking framework may identify a message with video frames, generate, using a composite convolutional neural network, joint data representing joint locations of a human depicted in the video frames, the generating of the joint data by the composite convolutional neural network done by a deep convolutional neural network operating on one portion of the video frames, a shallow convolutional neural network operating on a another portion of the video frames, and tracking the joint locations using a one-shot learner neural network that is trained to track the joint locations based on a concatenation of feature maps and a convolutional pose machine. The human pose tracking framework may store, the joint locations, and cause presentation of a rendition of the joint locations on a user interface of a client device.
Public/Granted literature
- US20230010480A1 EFFICIENT HUMAN POSE TRACKING IN VIDEOS Public/Granted day:2023-01-12
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