Machine learning algorithm (ANN) – simplified. See the use cases with R to understand the application
Description
This course aims to simplify concepts of Artificial Neural Network (ANN). ANN mimics the process of thinking. Using it’s inherent structure, ANN can solve multitude of problem like binary classifications problem, multi level classification problem etc.
The course is unique in terms of simplicity and it’s step by step approach of presenting the concepts and application of neural network.
The course has two section
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Section 1 : Theory of artificial neural network
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- what is neural network
- Terms associated with neural network
- What is node
- What is bias
- What is hidden layer / input layer / output layer
- What is activation function
- What is a feed forward model
- How does a Neural Network algorithm work?
- What is case / batch updating
- What is weight and bias updation
- Intuitive understanding of functioning of neural network
- Stopping criteria
- What decisions an analyst need to take to optimize the neural network?
- Data Pre processing required to apply ANN
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Section 2 : Application of artificial neural network
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- Application of ANN for binary outcome
- Application of ANN for multi level outcome
- Assignment of ANN – learn by doing
Total Students | 710 |
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Duration | 1 hour |
Language | English (India) |
Original Price | |
Sale Price | 0 |
Number of lectures | 13 |
Number of quizzes | 1 |
Total Reviews | 30 |
Global Rating | 4.1666665 |
Instructor Name | Gopal Prasad Malakar |
Course Insights (for Students)
Actionable, non-generic pointers before you enroll
Student Satisfaction
78% positive recent sentiment
Momentum
Steady interest
Time & Value
- Est. time: 1 hour
- Practical value: 7/10
Roadmap Fit
- Beginner → Beginner → Advanced
Key Takeaways for Learners
- Hands-on practice
- Real-world examples
- Project-based learning
- Hands On
- Examples
Course Review Summary
Signals distilled from the latest Udemy reviews
What learners praise
- Hands On
- Examples
- Real World
- Clear Explanation
Watch-outs
- Too fast
- Too slow
Difficulty
Best suited for
New learners starting from zero
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