By the end of this course, learners will be able to analyze transactional datasets, calculate and adjust support thresholds, generate and interpret association rules, clean real-world grocery data, and apply advanced algorithms such as Eclat to uncover meaningful purchasing patterns using R.

Analyze Market Basket Data Using R

Analyze Market Basket Data Using R
This course is part of Apply R for Predictive Analytics and Machine Learning Specialization

Instructor: EDUCBA
Access provided by ExxonMobil
Recommended experience
What you'll learn
Perform Market Basket Analysis in R using association rules and support thresholds.
Clean and analyze real-world transactional grocery data for co-purchase patterns.
Apply Apriori and Eclat algorithms to uncover meaningful purchasing insights.
Skills you'll gain
- Market Analysis
- Data Manipulation
- Data Preprocessing
- Data Analysis
- Interactive Data Visualization
- Cross Selling
- Transaction Processing
- Data Transformation
- Unsupervised Learning
- Customer Analysis
- Predictive Analytics
- Performance Tuning
- Data Cleansing
- Consumer Behaviour
- Data Mining
- Statistical Visualization
- Data Wrangling
Tools you'll learn
Details to know

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6 assignments
February 2026
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There are 2 modules in this course
This module introduces the fundamentals of Market Basket Analysis using R, guiding learners through loading and understanding transactional data, calculating minimum support, training association rule models, and optimizing results through support tuning and rule visualization.
What's included
6 videos3 assignments
This module focuses on preparing real-world transactional data for analysis, including cleaning the groceries dataset, removing duplicates, exploring product co-purchase behavior, and implementing the Eclat algorithm for efficient frequent itemset mining.
What's included
5 videos3 assignments
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