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Deep Learning Fundamentals

Theory and Python
4.9
4.9/5
(13 reviews)
3,018 students
Created by

9.5

Classbaze Grade®

10.0

Freshness

8.8

Popularity

9.1

Material

Theory and Python
Platform: Udemy
Video: 5h 56m
Language: English
Next start: On Demand

Best Deep Learning classes:

Classbaze Rating

Classbaze Grade®

9.5 / 10

CourseMarks Score® helps students to find the best classes. We aggregate 18 factors, including freshness, student feedback and content diversity.

Freshness

10.0 / 10
This course was last updated on 6/2022.

Course content can become outdated quite quickly. After analysing 71,530 courses, we found that the highest rated courses are updated every year. If a course has not been updated for more than 2 years, you should carefully evaluate the course before enrolling.

Popularity

8.8 / 10
We analyzed factors such as the rating (4.9/5) and the ratio between the number of reviews and the number of students, which is a great signal of student commitment.

New courses are hard to evaluate because there are no or just a few student ratings, but Student Feedback Score helps you find great courses even with fewer reviews.

Material

9.1 / 10
Video Score: 8.5 / 10
The course includes 5h 56m video content. Courses with more videos usually have a higher average rating. We have found that the sweet spot is 16 hours of video, which is long enough to teach a topic comprehensively, but not overwhelming. Courses over 16 hours of video gets the maximum score.
The average video length is 8 hours 18 minutes of 153 Deep Learning courses on Udemy.
Detail Score: 9.4 / 10

The top online course contains a detailed description of the course, what you will learn and also a detailed description about the instructor.

Extra Content Score: 9.5 / 10

Tests, exercises, articles and other resources help students to better understand and deepen their understanding of the topic.

This course contains:

0 article.
1 resources.
0 exercise.
0 test.

In this page

About the course

Welcome to Deep Learning Fundamentals.
This course covers the basic theory and Python practice of artificial neural networks. This course is designed for beginners who are interested in deep learning. Having knowledge of undergraduate level mathematics is preferable, but not a must.
Artificial intelligence is a technology that makes machines imitate intelligent human behavior and human cognitive functions. Machine learning is a branch of artificial intelligence. It enables systems to learn from data automatically, that is, learn without being explicitly programmed. Deep Learning is a type of machine learning. It uses artificial neural networks to solve complex problems.
One reason why deep learning has drawn much attention is that it overcomes the limitations of traditional machine learning. The first limitation is that traditional machine learning cannot handle high dimensional data. Thus, the performance of the traditional machine learning model tends to level off as the data amount increases. The second is that, when we use traditional machine learning techniques, we need to extract features manually. Therefore, when we analyze image data or movie data, traditional machine learning techniques are not suitable because such data contains a great number of features.
Deep learning can overcome these limitations of traditional machine learning. An artificial neural network is one of the algorithms of artificial intelligence, and usually, it takes a form of a deep learning model. It simulates the network neurons that make up the human brain. The structure of an artificial neural network enables a deep learning model to solve complex problems that traditional machine learning algorithms can hardly handle.
This course has some Python tutorials for developing deep learning models. And this course uses a library named Keras, which enables us to develop deep learning models efficiently. Basic-level Python knowledge is preferable, but Python beginners are also welcome.

This course consists of three modules.
1. Artificial Neural Networks
2. Convolutional Neural Networks
3. Recurrent Neural Networks.

The first module is the basic of artificial neural network.
The second module covers convolutional neural network that is a type of network effective for handling image and movie data.
The third module covers recurrent neural network that is effective for time-series analysis and analyzing text data.

After completing this course, you will have a fundamental knowledge of deep learning.
I’m looking forward to seeing you in this course!

What can you learn from this course?

✓ Basics of Deep Learning
✓ Artificial Neural Network
✓ Artificial Neural Network with Keras, Python
✓ Regression and Classification with Artificial Neural Network
✓ Convolutional Neural Network
✓ Recurrent Neural Network

What you need to start the course?

• None

Who is this course is made for?

• Anyone who wants to start studying deep learning

Are there coupons or discounts for Deep Learning Fundamentals ? What is the current price?

The course costs $14.99. And currently there is a 82% discount on the original price of the course, which was $18. So you save $3 if you enroll the course now.
The average price is $16.2 of 153 Deep Learning courses. So this course is 7% cheaper than the average Deep Learning course on Udemy.

Will I be refunded if I'm not satisfied with the Deep Learning Fundamentals course?

YES, Deep Learning Fundamentals has a 30-day money back guarantee. The 30-day refund policy is designed to allow students to study without risk.

Are there any financial aid for this course?

Currently we could not find a scholarship for the Deep Learning Fundamentals course, but there is a $3 discount from the original price ($18). So the current price is just $14.99.

Who will teach this course? Can I trust Takuma Kimura?

Takuma Kimura has created 4 courses that got 141 reviews which are generally positive. Takuma Kimura has taught 18,673 students and received a 4.5 average review out of 141 reviews. Depending on the information available, we think that Takuma Kimura is an instructor that you can trust.
Scientist of Organizational Behavior & Business Analytics
Profile Summary:
Dr. Takuma Kimura is an internationally recognized scholar in business and management fields. His expertise includes research in organizational behavior, and practical business analytics in human resource management and marketing. He teaches these subjects in universities and industrial companies.
Professional Details:
He published more than 10 academic papers in internationally prominent journals such as Journal of Business Ethics, International Journal of Management Reviews, Industrial Marketing Management.
He is awarded as one of the World Top Reviewers from Publons, and as a Recognized Reviewer from European Management Journal.
He is technically skilled for Statistical Analysis, Machine Learning, Data Science, Qualitative Analysis. And he has abundant knowledge in management theory, especially in organizational behavior and psychology.

9.5

Classbaze Grade®

10.0

Freshness

8.8

Popularity

9.1

Material

Platform: Udemy
Video: 5h 56m
Language: English
Next start: On Demand

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