House Price Prediction with Python and Linear Regression
Learn how to prepare real estate datasets, build linear regression models in Python, and evaluate your predictions using modern data science libraries.
このコースについて
Predicting real estate values is a fundamental skill in data science, but working with raw, messy housing data can be intimidating. This written course guides you step-by-step through the process of cleaning datasets and building predictive models. By the end of this course, you will transition from understanding basic statistical concepts to implementing a fully functional linear regression model in Python. You will gain the confidence to clean data, handle missing values, and evaluate your model's performance using standard industry metrics.
What you'll learn:
- Understand foundational linear regression concepts and key terminology before writing code.
- Prepare and preprocess housing datasets using modern Python data libraries.
- Handle missing values, outliers, and categorical variables for real estate data.
- Build and train a linear regression model to predict housing prices.
- Evaluate model performance using metrics like Mean Squared Error and R-squared.
- Apply modern Python practices, including environment setup and clean code structure.
The course starts with essential concepts of regression analysis and data preparation before guiding you through data cleaning and model building. You will progress naturally from foundational theory to practical Python implementation.
This course is designed for beginners in data science and Python programming, with no prior experience with machine learning required.
Start reading today to build your first predictive model.
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