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Neural network based position estimation of target object of interest in video frames

摘要

Visual target tracking is task of locating a target in consecutive frame of a video. Conventional systems observe target behavior frames of the video. However, dealing with this problem is very challenging when video has illumination variations, occlusion, change in size and view of the object due to relative motion between camera and object. Embodiments of the present disclosure addresses this problem by implementing Neural Network (NN), its features and their corresponding gradients. Present disclosure explicitly guides the NN by feeding target object of interest (ToI) defined by a bounding box in the first frame of the video. With this guidance, NN generates target activation map via convolutional features map and their gradient maps, thus giving tentative location of the ToI to further exploit to locate target object precisely by using correlation filter(s) and peak location estimator, thus repeating process for every frame of video to track ToI accurately.

著录项

  • 公开/公告号US11544348B2;US2023011544348B2;US11544348B2;US11544348

    专利类型

  • 公开/公告日2023-01-03

    原文格式PDF

  • 申请/专利权人 TATA CONSULTANCY SERVICES LIMITED;

    申请/专利号US16292155;US201900016292155;US201916292155A;US201916292155

  • 发明设计人

    申请日2019-03-04

  • 分类号G06F17/16;G06F17/18;G06T7/77;G06V10/82;

  • 国家

  • 入库时间 2023-06-26 00:45:12

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