The Complete Self-Driving Car Course - Applied Deep Learning
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145 on-demand videos & exercises
Level: BeginneR
English
18hrs
Access on mobile, web and TV
Who's this course for?
This
course is for anyone with an interest in deep learning and Computer Vision.
Anyone (no matter the skill level) who wants to transition into the field of
artificial intelligence, including entrepreneurs with an interest in working
on some of the most cutting-edge technologies, will find this course useful.
What you'll learn
Apply
Computer Vision and deep learning techniques to build automotive-related
algorithms.
Understand, build, and train convolutional neural networks with
Keras.
Simulate a fully functional self-driving car with convolutional neural
networks and Computer Vision.
Train a deep learning model that can identify up
to 43 different traffic signs.
Use essential Computer Vision techniques to
identify lane lines on a road.
Build and train powerful neural networks with
Keras.
Understand neural networks at the most fundamental, perceptron-based
level.
Key Features
The
transition from a beginner to deep learning expert.
Learn through
demonstrations as your instructor completes each task with you.
No
experience required.
Course Curriculum
What to know about this course
Self-driving
cars have emerged to be one of the most transformative technologies. Fueled
by deep learning algorithms, they are rapidly developing and creating new
opportunities in the mobility sector. Deep learning jobs command some of the
highest salaries in the development world. This is the first and one of the
only courses that make practical use of deep learning and applies it to
building a self-driving car. You’ll learn and master deep learning in this
fun and exciting course with top instructor Rayan Slim. Having trained
thousands of students, Rayan is a highly rated and experienced instructor who
follows a learning-by-doing approach.
By the end of the course, you will have
built a fully functional self-driving car powered entirely by deep learning.
This powerful simulation will impress even the most senior developers and
ensure you have hands-on skills in neural networks that you can bring to any
project or company. This course will
show you how to do the following: - Use Computer Vision techniques via OpenCV
to identify lane lines for a self-driving car - Train a perceptron-based
neural network to classify between binary classes - Train convolutional
neural networks to identify various traffic signs - Train deep neural
networks to fit complex datasets - Master Keras, a power neural network
library written in Python - Build and train a fully functional self-driving
car All the code and supporting files
for this course are available at
https://github.com/PacktPublishing/The-Complete-Self-Driving-Car-Course---Applied-Deep-Learning