首页> 外国专利> DEEP LEARNING BASED TATTOO DETECTION SYSTEM WITH OPTIMIZED DATA LABELING FOR OFFLINE AND REAL-TIME PROCESSING

DEEP LEARNING BASED TATTOO DETECTION SYSTEM WITH OPTIMIZED DATA LABELING FOR OFFLINE AND REAL-TIME PROCESSING

机译:带有优化数据标签的基于深度学习的纹身检测系统,用于离线和实时处理

摘要

A computer-implemented method executed by at least one processor for detecting tattoos on a human body is presented. The method includes inputting a plurality of images into a tattoo detection module, selecting one or more images of the plurality of images including tattoos with at least three keypoints, the at least three keypoints having auxiliary information related to the tattoos, manually labeling tattoo locations in the plurality of images including tattoos to create labeled tattoo images, increasing a size of the labeled tattoo images identified to be below a predetermined threshold by padding a width and height of the labeled tattoo images, training two different tattoo detection deep learning models with the labeled tattoo images defining tattoo training data, and executing either the first tattoo detection deep learning model or the second tattoo detection deep learning model based on a performance of a general-purpose graphical processing unit.
机译:提出了由至少一个处理器执行的用于检测人体上的纹身的计算机实现的方法。该方法包括将多个图像输入到纹身检测模块中,选择包括具有至少三个关键点的纹身的多个图像中的一个或多个图像,所述至少三个关键点具有与纹身有关的辅助信息,手动标记纹身位置。包括纹身的多个图像创建标记的纹身图像,通过填充标记的纹身图像的宽度和高度来增加被标识为低于预定阈值的标记的纹身图像的尺寸,用标记的训练两个不同的纹身检测深度学习模型纹身图像定义纹身训练数据,并基于通用图形处理单元的性能执行第一纹身检测深度学习模型或第二纹身检测深度学习模型。

著录项

  • 公开/公告号US2020311962A1

    专利类型

  • 公开/公告日2020-10-01

    原文格式PDF

  • 申请/专利权人 NEC LABORATORIES AMERICA INC.;

    申请/专利号US202016814248

  • 发明设计人 YI YANG;SRIMAT CHAKRADHAR;TARANG CHUGH;

    申请日2020-03-10

  • 分类号G06T7/70;G06F16/58;G06N3/08;G06N3/04;G06K9/62;G06T1/20;G06T3/40;G06T7/90;

  • 国家 US

  • 入库时间 2022-08-21 11:22:21

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