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Скачать или смотреть AI-Powered Driver Distraction Detection System Python |Deep Learning Project + Source Code | Tamil

  • ScratchLearn
  • 2025-11-30
  • 42
AI-Powered Driver Distraction Detection System  Python |Deep Learning  Project + Source Code | Tamil
driver distraction detection pythondrowsiness detection pythonai driver monitoring systemopencv driver detectiondeep learning driver safetyreal time driver monitoring pythonai road safety projectcomputer vision driver monitoringfinal year project pythonai project tamilpython ai tamilopencv project tamilcomputer vision tamil
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Описание к видео AI-Powered Driver Distraction Detection System Python |Deep Learning Project + Source Code | Tamil

🚗 Welcome to this hands-on AI-Powered Driver Distraction Detection System using Python, OpenCV, and Deep Learning!

In this Tamil explained (தமிழில் விளக்கப்படும்) tutorial, you’ll learn how to build a real-time computer vision system that detects driver distractions such as texting, yawning, drowsiness, and looking away using AI.
This project is highly useful for Tamil engineering students, final-year projects, AI safety research, and smart vehicle systems.

🔍 What You’ll Learn

✅ Real-time driver monitoring using Computer Vision
✅ Deep Learning techniques for face & eye detection
✅ Training & testing your own distraction detection model
✅ Integration of OpenCV & TensorFlow for AI automation
✅ Step-by-step explanation of code, logic & dataset handling

🧰 Tech Stack Used

💻 Languages & Tools:
Python, OpenCV, TensorFlow / Keras, NumPy, Deep Learning, Computer Vision

🧠 Core Concepts:
CNN (Convolutional Neural Networks), Object Detection, Image Classification, Real-time Monitoring

🕒 Driver Distraction Detection – Full Project Timeline

00:00–01:20 → Project Outcome
Overview of what the system detects (phone usage, drowsiness, no-attention) and final results.

01:20–03:50 → Introduction
Why driver distraction detection is important, real-world applications.

03:50–07:00 → System Requirements
Python version, required libraries, camera setup, hardware basics.

07:00–11:30 → Environment Setup
Installing Python, dependencies (OpenCV, Dlib/MediaPipe/YOLO), and project folder structure.

11:30–15:00 → Dataset Overview
Driver images/videos, distracted vs non-distracted classes, annotation format.

15:00–19:00 → Model Setup (YOLO / CNN / MediaPipe)
Cloning repo, loading model weights, configuring parameters.

19:00–24:00 → Facial & Gesture Landmark Detection
Eyes, head pose, mouth, hand-to-face detection, attention points.

24:00–32:00 → Distraction Logic Implementation
Phone usage detection, yawning, drowsiness, looking away, unsafe actions.

32:00–40:00 → Real-time Driver Monitoring System
Webcam feed analysis, bounding boxes, alerts on screen, FPS optimization.

40:00–47:30 → Alert & Warning System
Beep alerts, on-screen notifications, event logging, threshold tuning.

47:30–54:00 → Testing & Evaluation
Testing different scenarios, accuracy metrics, false positive control.

54:00–56:44 → Conclusion
Final results, improvements, next steps.
🧩 Why Watch This Project?

Learn how AI & Deep Learning improve road safety by detecting distracted drivers — a must-have skill for:

AI & Computer Vision learners

Automotive AI developers

Final-year students

Real-time detection system builders

⭐ Get Full Source Code + 21 Computer Vision Projects (For Tamil Students)

🎓 Want this complete Driver Distraction Detection project (source code + dataset + documentation) AND 21 more real-world Computer Vision projects with certificate?

👉 Unlock everything here →
https://www.udemy.com/course/computer...

✅ Full source code
✅ 21 AI + CV Projects
✅ Project reports
✅ Datasets
✅ Certificate of Completion
✅ Lifetime access

🔥 Limited-time Udemy deal active — check the price before it ends!

🔔 Subscribe for more Tamil explained AI Safety & Python projects!
💡 Got questions? Drop them in the comments below.
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