Journal of Signal and Information Processing

Volume 8, Issue 2 (May 2017)

ISSN Print: 2159-4465   ISSN Online: 2159-4481

Google-based Impact Factor: 1.78  Citations  

Real-Time Face Detection and Recognition in Complex Background

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DOI: 10.4236/jsip.2017.82007    3,708 Downloads   12,547 Views  Citations

ABSTRACT

This paper provides efficient and robust algorithms for real-time face detection and recognition in complex backgrounds. The algorithms are implemented using a series of signal processing methods including Ada Boost, cascade classifier, Local Binary Pattern (LBP), Haar-like feature, facial image pre-processing and Principal Component Analysis (PCA). The Ada Boost algorithm is implemented in a cascade classifier to train the face and eye detectors with robust detection accuracy. The LBP descriptor is utilized to extract facial features for fast face detection. The eye detection algorithm reduces the false face detection rate. The detected facial image is then processed to correct the orientation and increase the contrast, therefore, maintains high facial recognition accuracy. Finally, the PCA algorithm is used to recognize faces efficiently. Large databases with faces and non-faces images are used to train and validate face detection and facial recognition algorithms. The algorithms achieve an overall true-positive rate of 98.8% for face detection and 99.2% for correct facial recognition.

Share and Cite:

Zhang, X. , Gonnot, T. and Saniie, J. (2017) Real-Time Face Detection and Recognition in Complex Background. Journal of Signal and Information Processing, 8, 99-112. doi: 10.4236/jsip.2017.82007.

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