Objects Detection and Recognition in Videos for Sequence Learning

Yingxu Wang, Tony Cai, Omar A. Zatarain
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引用次数: 1

Abstract

A key challenge to sequence learning for video comprehension is objects detection and localization in dynamic and real-time environment. This paper presents two methodological approaches to autonomous and generic object detection and localization in video sequences. Algorithms for both facial and non-facial object localization, as well as their integration, are developed. A set of experiments and case studies for practical video image processing is demonstrated for sequence learning. This work paves a way to sequence learning towards enhanced computer and robot vision technologies in applications of self-driving cars and real-time facial recognition.
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面向序列学习的视频对象检测与识别
序列学习在视频理解中的一个关键挑战是动态实时环境下的目标检测和定位。本文提出了视频序列中自主和通用目标检测与定位的两种方法。开发了人脸和非人脸目标定位及其集成算法。一组实验和案例研究的实际视频图像处理演示了序列学习。这项工作为在自动驾驶汽车和实时面部识别应用中增强计算机和机器人视觉技术的序列学习铺平了道路。
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