Face Recognition under Varying Illumination Condition

This project demostrates a GUI-based face recognition under complex illumination conditions using state-of-the-art methods and a new method

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This projects attempts to demonstrate the accuracy and efficiency of several state-of-th-art method for face recognition under varying illumination conditions. Some of these methods ar GradientFaces, Weber Faces, DCT Normalization, DOG, MSR and SSR. An interractive GUI-based system has been developed for training the face images in question and testing their identification rate using the Principle Component Analysis (PCA) Method. Later, a new method was proposed that was later discovered to outperform other state-of-the-art methods (although under varying conditions).

Cita come

Chinedu Olebu (2026). Face Recognition under Varying Illumination Condition (https://it.mathworks.com/matlabcentral/fileexchange/69804-face-recognition-under-varying-illumination-condition), MATLAB Central File Exchange. Recuperato .

Informazioni generali

Compatibilità della release di MATLAB

  • Compatibile con qualsiasi release

Compatibilità della piattaforma

  • Windows
  • macOS
  • Linux
Versione Pubblicato Note della release Action
1.0.0