A comparative study between LBP and Haar-like features for Face Detection using OpenCV

Kushsairy Kadir, Mohd Khairi Kamaruddin, Haidawati Nasir, Sairul Izwan Safie, Zulkifli Abdul Kadir Bakti · 2014

Face Detection is an important step in any face recognition systems, for the purpose of localizing and extracting face region from the rest of the images. There are many techniques, which have been proposed from simple edge detection techniques to advance techniques such as utilizing pattern recognition approaches. This paper evaluates two methods of face detection, her features and Local Binary Pattern features based on detection hit rate and detection speed. The algorithms were tested on Microsoft Visual C++ 2010 Express with OpenCV library. The experimental results show that Local Binary Pattern features are most efficient and reliable for the implementation of a real-time face detection system.

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