Etude et Développement d’un Système de Détection de la Somnolence chez le Conducteur
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This work aims to develop an intelligent system for detecting driver drowsiness while driving,
with the goal of enhancing road safety through direct monitoring. This project oers an
embedded solution based on computer vision and deep learning techniques. Our methodology
is based on a comparative evaluation between two methods: the rst model relied on the
MobileNet architecture, which showed a quick response during the training phase but did not
achieve the required eectiveness during actual operation. Consequently, the second model
was developed using MediaPipe technology, which proved highly accurate in studying facial
landmarks during practical operation, making it the optimal choice for this system. The
system's eectiveness was veried through practical tests in real driving conditions inside a
vehicle, coupled with an audible alert system for immediate warning. The results highlight
that relying on MediaPipe technology represents the most ecient and reliable solution,
eectively contributing to the development of driver monitoring techniques and the reduction
of trac accidents caused by fatigue.
