Beginner Friendly Intro to AI Course (Part 1)
Beginner Friendly Intro to AI Course (Part 1), available at Free, has an average rating of 2.25, with 25 lectures, based on 2 reviews, and has 286 subscribers.
You will learn about Basics of AI, including applications, misconceptions, branches, history, and ethics Basics of python, including variables, loops, data structures, and basic algorithms Basics of libraries, including pandas, numpy, and matplotlib Basics of ML, including supervised, unsupervised, reinforcement learning, regression and classification, and various ML models/algorithms Basics of Computer Vision, including neural networks, convoluted neural networks, deep learning, and transfer learning This course is ideal for individuals who are This course is meant for high schoolers and ambitious middle schoolers who are interested in learning more about AI and making an impact. It is particularly useful for This course is meant for high schoolers and ambitious middle schoolers who are interested in learning more about AI and making an impact.
Enroll now: Beginner Friendly Intro to AI Course (Part 1)
Summary
Title: Beginner Friendly Intro to AI Course (Part 1)
Price: Free
Average Rating: 2.25
Number of Lectures: 25
Number of Published Lectures: 25
Number of Curriculum Items: 25
Number of Published Curriculum Objects: 25
Original Price: Free
Quality Status: approved
Status: Live
What You Will Learn
- Basics of AI, including applications, misconceptions, branches, history, and ethics
- Basics of python, including variables, loops, data structures, and basic algorithms
- Basics of libraries, including pandas, numpy, and matplotlib
- Basics of ML, including supervised, unsupervised, reinforcement learning, regression and classification, and various ML models/algorithms
- Basics of Computer Vision, including neural networks, convoluted neural networks, deep learning, and transfer learning
Who Should Attend
- This course is meant for high schoolers and ambitious middle schoolers who are interested in learning more about AI and making an impact.
Target Audiences
- This course is meant for high schoolers and ambitious middle schoolers who are interested in learning more about AI and making an impact.
*This course is meant for purchase by an adult over 18*
Targeted towards high schoolers, this course covers the basics of AI, including its applications, misconceptions, branches, history, and ethics. The student will learn Python programming essentials, such as variables, loops, data structures, and basic algorithms, along with key Python libraries like pandas, numpy, and matplotlib. Moreover, the course introduces machine learning concepts, including supervised, unsupervised, and reinforcement learning, as well as regression, classification, and various ML models and algorithms. The student will also delve into computer vision, exploring neural networks, convolutional neural networks (CNNs), deep learning, and transfer learning.
This course is designed to be engaging and easy to understand, making complex topics accessible for high school students. Each topic is explained with simple examples and hands-on activities to apply what you learn. By the end of the course, the student will have a solid foundation in AI and Python programming, enabling the student to tackle real-world problems using technology.
Whether the student is interested in using AI for health, education, or any other field, this course will give them the tools and knowledge they need to start their journey. Enroll in this course to build a strong foundation in AI, and acquire the skills and knowledge to create impact in this special field!
Course Curriculum
Chapter 1: Introduction to AI
Lecture 1: What is AI? (1)
Lecture 2: Boston Dynamics Video
Lecture 3: What is AI? (2)
Lecture 4: Branches of AI (1)
Lecture 5: Tonight Show Video
Lecture 6: Branches of AI (2)
Lecture 7: History of AI
Lecture 8: AI Bias and Ethics (1)
Lecture 9: Algorithmic Bias and Fairness: Crash Course AI Video
Lecture 10: AI Bias and Ethics (2)
Lecture 11: AI Dangers Ted Talk
Lecture 12: AI Bias and Ethics (3)
Chapter 2: Introduction to Python
Lecture 1: Intro to Python (1)
Lecture 2: Colab Tutorial For Beginners Video
Lecture 3: Intro to Python (2)
Lecture 4: Printing and Variables
Lecture 5: Conditionals
Lecture 6: Loops
Lecture 7: Functions
Lecture 8: Lists
Lecture 9: (Optional) Sorting
Lecture 10: Dictionaries
Chapter 3: Introduction to Libraries
Lecture 1: Intro to Libraries
Lecture 2: Intro to Pandas
Lecture 3: Great Job!
Instructors
-
Nidhi Parthasarathy
Instructor at Udemy
Rating Distribution
- 1 stars: 1 votes
- 2 stars: 0 votes
- 3 stars: 1 votes
- 4 stars: 0 votes
- 5 stars: 0 votes
Frequently Asked Questions
How long do I have access to the course materials?
You can view and review the lecture materials indefinitely, like an on-demand channel.
Can I take my courses with me wherever I go?
Definitely! If you have an internet connection, courses on Udemy are available on any device at any time. If you don’t have an internet connection, some instructors also let their students download course lectures. That’s up to the instructor though, so make sure you get on their good side!
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