Mô tả

If you want to learn the process to detect drowsiness while a person is driving a car with the help of AI then this course is for you.


In this course I will cover, how to use a pre-trained DLib model to detect drowsiness. This is a hands on project where I will teach you the step by step process in building this drowsiness detector using DLib.


This course will walk you through the initial understanding of DLib, About Dlib Face Detector, About Dlib Face Region Predictor, then using the same to detect drowsiness of a person in a live video stream.


I have splitted and segregated the entire course in Tasks below, for ease of understanding of what will be covered.


Task 1  :  Project Overview.

Task 2  :  Introduction to Google Colab.

Task 3  :  Understanding the project folder structure.

Task 4  :  What is Dlib

Task 5    About Dlib Face Detector

Task 6    About Dlib Face Region Predictor

Task 7  :  Importing the Libraries.

Task 8  :  Loading the dlib face regions predictor

Task 9 :  Defining the Face region coordinates

Task 10 :  Using Euclidean distance to calculate the Eye Aspect Ratio

Task 11 :  Loading the face detector and face landmark predictor

Task 12 :  Using the face region coordinates to extract the left and right eye details

Task 13 :  Defining a method to play the alarm.

Task 14 :  Putting it all together.




Almost all the statistics have identified driver drowsiness as a high priority vehicle safety issue. Drowsiness has been estimated to be involved in 10-40 per cent of crashes on motorways. Fall-asleep crashes are very serious in terms of injury severity and more likely to occur in sleep-deprived individuals.

Hence this problem statement has been picked up to see how we can solve this problem to a great extent by build a drowsiness detector.

However please note, that this has been made purely for educational purpose and refrain from using the same in real world scenarios.

In this course we are going to build a drowsiness detector and use the same to detect in live video streams.

Take the course now, and have a much stronger grasp on the subject in just a few hours!



You will receive :


1. Certificate of completion from AutomationGig.

2. The Jupyter notebook and other project files are provided at the end of the course in the last section.




So what are you waiting for?


Grab a cup of coffee, click on the ENROLL NOW Button and start learning the most demanded skill of the 21st century. We'll see you inside the course!


Happy Learning !!


[Please note that this course and its related contents are for educational purpose only]


[Music : bensound]

Bạn sẽ học được gì

What is Dlib

About Dlib Face Detector

About Dlib Face Region Predictor

Using Euclidean distance to calculate the Eye Aspect Ratio

Detecting drowsiness in live video stream in Google Colab

Yêu cầu

  • Basics knowledge of Python

Nội dung khoá học

4 sections

Introduction and Getting Started

3 lectures
Project Overview
01:03
Introduction to Google Colab
01:14
Understanding the project folder structure
02:40

About DLIB

3 lectures
What is Dlib
01:27
About Dlib Face Detector
01:27
About Dlib Face Region Predictor
01:28

Building a Drowsiness Detection System

8 lectures
Importing the libraries
05:38
Loading the dlib face regions predictor
01:18
Defining the Face region coordinates
01:28
Using Euclidean distance to calculate the Eye Aspect Ratio
03:06
Loading the face detector and face landmark predictor
03:40
Using the face region coordinates to extract the left and right eye details
00:51
Defining a method to play the alarm.
01:02
Putting it all together.
15:21

Project Files and Code

1 lectures
Full Project Code
00:02

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