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This immersive course delves into Python and R for investigative data analytics
Updated on Sep, 2026
Programming, Data Science, Data Analysis
Duration - 2.5 hours
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This immersive course delves into Python and R for investigative data analytics, spotlighting techniques such as heatmap generation, clustering algorithms, decision tree analysis, and text analytics. By comparing Python's seaborn and matplotlib with R's ggplot2, students will learn to craft detailed heatmaps and unveiling intricate data patterns. Clustering sessions will demonstrate segmenting techniques using Python's scikit-learn and R's cluster packages, applying K-means to dissect data into significant clusters for insightful analysis in areas such as market research and customer segmentation.
In the decision tree segment, the course contrasts Python's scikit-learn with R's party package, teaching how to build models that illuminate the path from data to decisions. The exploration extends into text analytics, employing Python's plotly express for dynamic visualizations and both languages' capabilities to create expressive word clouds, enabling students to mine and interpret textual data for trend spotting.
Tailored for both budding and seasoned data analysts and researchers, this course interweaves theoretical concepts with substantial hands-on practice. Learners will emerge with a profound understanding of which programming language, Python or R, best fits various data analytics challenges. By fostering a practical learning environment, the course underscores real-world applications, ensuring participants gain the proficiency needed to navigate the complexities of data analytics confidently. This dynamic curriculum is poised to enhance analytical skills, preparing learners for the demands of data-driven decision-making in their professional and academic careers.
No programming experience needed. All you need to do is follow along.
Check out the detailed breakdown of what’s inside the course
Penny Li is a Kaggle Notebook Expert, a data app developer with experience developing mobile apps that analyze data. She herself has experience analyzing large volumes of data in class-action lawsuits. Penny has worked 6 years in tax positions.
Penny is a blogger on Medium and a sub stacker.
Penny is an Illinois Certified Public Accountant and a Certified Fraud Examiner.
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