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Linear and Polynomial Regression using Scikit-learn [Part 12] | Machine Learning for Beginners
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Machine Learning for Beginners - Linear and Polynomial Regression using Scikit-learn [Part 12] | Machine Learning for Beginners

Master Machine Learning: From Basics to Regression Mastery with Microsoft Developer!

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13 learners

What you'll learn

Understand the fundamentals and history of machine learning.
Learn how to set up the tools and environment necessary for building machine learning models.
Apply linear and logistic regression techniques to real-world datasets.
Analyze and visualize data effectively using tools like Matplotlib.

This course includes

  • 1 hours of video
  • Certificate of completion
  • Access on mobile and TV

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Full Transcript

🎃 Join Bea Stollnitz, a Principal Cloud Advocate at Microsoft, as she explores linear and polynomial regression models for predicting pumpkin prices using Scikit-learn. This video is part of our Machine Learning for Beginners series, where we cover various machine learning topics and their implementation using Python code in Jupyter notebooks. In this tutorial, we will work with the pumpkin dataset and continue adding code to our Jupyter notebook from the previous video. In this video, you'll learn: ✅ How to train and test linear and polynomial regression models ✅ How to calculate mean squared error and coefficient of determination ✅ How to visualize the results with Matplotlib Will we find a better prediction model using more features? Watch to find out! Make sure to subscribe and hit the notification bell 🔔 so you won't miss our next video, where we'll see if we can improve our model by using more features. See you there! 0:00 - Intro 0:33 - Create a linear regression model to predict pumpkin prices 2:09 - Mean squared error 2:22 - Coefficient of determination 2:50 - Calculate the slope and intercept from the model 3:23 - Create a polynomial regression model 📙 Follow along: The Jupyter Notebook to follow along with this lesson is available here: https://github.com/microsoft/ML-For-Beginners/tree/main/2-Regression/3-Linear #Python #ScikitLearn #LinearRegression #PolynomialRegression #DataScience #MachineLearning #ml 📚 Learn more: This course is based on the free, open source, 26 lesson ML For Beginners curriculum from Microsoft, which can be found at https://aka.ms/ml-beginners. 📇 Connect with Bea: Blog: https://bea.stollnitz.com/blog/ LinkedIn: https://www.linkedin.com/in/beatrizstollnitz/ Twitter: https://twitter.com/beastollnitz

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