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Artificial Intelligence: Drowsiness Detection using DLib

Develop essential data science & ai skills with expert instruction and practical examples.

Online Course
Self-paced learning
Flexible Schedule
Learn at your pace
Expert Instructor
Industry professional
Certificate
Upon completion
What You'll Learn
Master the fundamentals of data science & ai
Apply best practices and industry standards
Build practical projects to demonstrate your skills
Understand advanced concepts and techniques

Skills you'll gain:

Professional SkillsBest PracticesIndustry Standards
Prerequisites & Target Audience

Skill Level

IntermediateSome prior knowledge recommended

Requirements

Basic understanding of data science & ai
Enthusiasm to learn
Access to necessary software/tools
Commitment to practice

Who This Course Is For

Professionals working in data science & ai
Students and career changers
Freelancers and consultants
Anyone looking to improve their skills
Course Information

About This Course

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 DlibTask 5 About Dlib Face DetectorTask 6 About Dlib Face Region PredictorTask 7 : Importing the Libraries.

Task 8 : Loading the dlib face regions predictorTask 9: Defining the Face region coordinatesTask 10: Using Euclidean distance to calculate the Eye Aspect RatioTask 11: Loading the face detector and face landmark predictorTask 12: Using the face region coordinates to extract the left and right eye detailsTask 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.

Provider
Udemy
Estimated Duration
10-20 hours
Language
English
Category
Technology & Programming

Topics Covered

Data Science & AI

Course Details

Format
Online, Self-Paced
Access
Lifetime
Certificate
Upon Completion
Support
Q&A Forum
Course Details
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This course includes:

Lifetime access to course content
Access on mobile and desktop
Certificate of completion
Downloadable resources

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