Graduate Admission Prediction with Pyspark ML
In this 1 hour long project-based course, you will learn to build a linear regression model using Pyspark ML to predict students' admission at the university....
About This Course
In this 1 hour long project-based course, you will learn to build a linear regression model using Pyspark ML to predict students' admission at the university. We will use the graduate admission 2 data set from Kaggle. Our goal is to use a Simple Linear Regression Machine Learning Algorithm from the Pyspark Machine learning library to predict the chances of getting admission. We will be carrying out the entire project on the Google Colab environment with the installation of Pyspark. You will need a free Gmail account to complete this project. Please be aware of the fact that the dataset and the model in this project, can not be used in the real-life. We are only using this data for the learning purposes. By the end of this project, you will be able to build the linear regression model using Pyspark ML to predict admission chances.You will also be able to setup and work with Pyspark on the Google Colab environment. Additionally, you will also be able to clean and prepare data for analysis. You should be familiar with the Python Programming language and you should have a theoretical understanding of Linear Regression algorithm. Note: This course works best for learners who are based in the North America region. We’re currently working on providing the same experience in other regions.
Topics Covered
Frequently Asked Questions
How much does Graduate Admission Prediction with Pyspark ML cost?
Visit the Graduate Admission Prediction with Pyspark ML course page for current pricing and available discounts.
Who teaches Graduate Admission Prediction with Pyspark ML?
Graduate Admission Prediction with Pyspark ML is taught by Priya Jha, Coursera.
What skill level is Graduate Admission Prediction with Pyspark ML for?
This course is designed for all levels learners.
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