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Systems and methods for real-time adjustment of neural networks for autonomous tracking and localization of moving subject

机译:用于实时调整神经网络的自主跟踪和移动主题本地化的系统和方法

摘要

A goal of the disclosure is to provide real-time adjustment of a deep learning-based tracking system to track a moving individual without using a labeled set of training data. Disclosed are systems and methods for tracking a moving individual with an autonomous drone. Initialization video data of the specific individual is obtained. Based on the initialization video data, real-time training of an input neural network is performed to generate a detection neural network that uniquely corresponds to the specific individual. Real-time video monitoring data of the specific individual and the surrounding environment is captured. Using the detection neural network, target detection is performed on the real-time video monitoring data and a detection output corresponding to a location of the specific individual within a given frame of the real-time video monitoring data is generated. Based on the detection output, first tracking commands are generated to maneuver and center the camera on the location of the specific individual.
机译:本公开的目标是提供基于深度学习的跟踪系统的实时调整,以跟踪移动个体而不使用标记的一组训练数据。公开了用于跟踪具有自主无人机的移动个体的系统和方法。获得特定个人的初始化视频数据。基于初始化视频数据,执行输入神经网络的实时训练以生成唯一对应于特定个体的检测神经网络。捕获特定个人和周围环境的实时视频监控数据。使用检测神经网络,对实时视频监视数据执行目标检测,并且生成对应于实时视频监视数据的给定帧内的特定单独的位置的检测输出。基于检测输出,将生成第一跟踪命令以在特定个人的位置上操纵并将摄像机居中。

著录项

  • 公开/公告号US11216954B2

    专利类型

  • 公开/公告日2022-01-04

    原文格式PDF

  • 申请/专利权人 TG-17 LLC;

    申请/专利号US201916416887

  • 申请日2019-05-20

  • 分类号G08B13/196;G08B25/01;G06T7/20;H04N13/296;G08B19;G06N3/08;G05D1;G05D1/10;B64C39/02;G06K9/62;G06K9;G05D1/12;

  • 国家 US

  • 入库时间 2022-08-24 23:10:56

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