Make 20 AI & Machine Learning GUI Applications in Python
Published 9/2026
Created by Khan School
MP4 | Video: h264, 1280x720 | Audio: AAC, 44.1 KHz, 2 Ch
Level: Expert | Genre: eLearning | Language: English | Duration: 113 Lectures ( 20h 16m ) | Size: 8.3 GB
Build 20 AI-Powered Applications with Python Using Real-World Data and Machine Learning Algorithms
What you'll learn
Requirements
Description
Are you ready to learnArtificial Intelligence and Machine Learning with Python and put your knowledge into practice by building real applications?
Make 20 AI & Machine Learning Applications in Python is a comprehensive, hands-on course designed to take you through both thetheory and practical implementation of Machine Learning. You won't simply learn how to use machine learning libraries-you'll also understand the concepts and algorithms behind the models and learn how to apply them to real-world problems.
Throughout the course, you'll first develop a solid understanding of important Machine Learning concepts and techniques. You'll learn how machine learning works, how models learn from data, how different types of machine learning problems are approached, and how to choose appropriate techniques for different situations.
You'll explore important areas of Machine Learning includingsupervised learning, unsupervised learning, classification, regression, clustering, and association-rule learning. You'll also learn about important concepts involved in preparing data, training models, making predictions, and evaluating model performance.
After learning the underlying concepts, you'll put that knowledge into practice by building20 AI and Machine Learning applications in Python.
The projects will allow you to see how the concepts you learn can be applied to practical problems. You'll work with real-world datasets and learn how to prepare and analyze data, train machine learning models, generate predictions, discover patterns, and interpret results.
You'll work with different machine learning approaches and apply them to scenarios such as prediction, classification, customer analysis, employee performance analysis, and product purchasing patterns.
For example, you'll build aMarket Basket Analysis application using the Apriori algorithm to discover which products customers are likely to purchase together. You'll also build anemployee performance clustering application that uses clustering techniques to identify groups of employees based on their performance.
Throughout the course, you'll work with Python and popular tools and libraries used in Machine Learning. You'll learn how to take a machine learning problem fromraw data to a working application.
The combination of theory and practical projects is one of the key strengths of this course. Understanding the theory helps you knowwhy an algorithm works, while building applications teaches youhow to actually use it.
By the end of the course, you'll have developed a strong foundation in Machine Learning concepts and gained hands-on experience by building20 complete AI and Machine Learning applications in Python.
You'll also have a collection of practical projects that you can use to strengthen your portfolio and demonstrate your ability to apply Machine Learning to real-world problems.
Whether you're a Python programmer, aspiring Machine Learning developer, student, data enthusiast, or someone looking to enter the world of AI, this course provides a combination oftheory, practical learning, and real-world application development.
Don't just learn Machine Learning.
Understand it. Build with it. Apply it.
Join the course and start your journey into AI and Machine Learning with Python.
Who this course is for
Homepage
Code:
https://www.udemy.com/course/make-20-ai-machine-learning-gui-applications-in-python
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