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Learning system for standing human detection

Boudour Ammar, Nizar Rokbani, Adel M. Alimi

发表年份
2011
引用次数
9

摘要

The human detection is a key functionality to reach Human Computer and Robot Interaction. The human tracking is also a rapidly evolving area in computer and robot vision; it aims to explore and to follow human motion. We present in this article an intelligent system to learn human detection. The descriptors used in our system make up the combination of HOG and SIFT that capture salient features of humans automatically. Additionally, this system is employed to follow humans that it detects. Experimental results have been extracted for a set of sequences with standing and moving people at different positions and with a variation of backgrounds.

关键词

Artificial intelligenceComputer scienceComputer visionScale-invariant feature transformSalientRobotSet (abstract data type)Human–robot interactionKey (lock)Human motion

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