Design of a Neural Networks Classifier for Face Detection

نویسندگان

  • Fethi Smach
  • Mohamed Atri
  • Johel Mitéran
  • Mohamed Abid
چکیده

Face detection and recognition has many applications in a variety of fields such as security system, videoconferencing and identification. Face classification is currently implemented in software. A hardware implementation allows real-time processing, but has higher cost and time to-market. The objective of this work was to implement a classifier based on neural networks MLP (Multi-layer Perception) for face detection. The MLP was used to classify face and non-face patterns. The system described using C language on a P4 (2.4 Ghz) to extract weight values. Then a Hardware implementation achieved using VHDL based Methodology. We targeted Xilinx FPGA as the implementation support.

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تاریخ انتشار 2005