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⏱ 2h 48m📚 28 lessons🎧 Audio version
Pandas for Data Analysis: Python Data Structures and Cleaning
Learn how to use Python and the Pandas library to efficiently load, clean, transform, and analyze real-world datasets, preparing you for foundational data analysis tasks.
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About this course
Data manipulation is the critical first step in modern data science, and Pandas is the essential, high-performance tool for Python users. This course provides a practical, foundational understanding of the Pandas library, focusing on efficiency and best practices. By the end, you will be proficient in handling diverse data formats, performing complex transformations, and structuring data for statistical analysis or machine learning applications.
What you'll learn:
* Understand the core architecture of Pandas, including Series and DataFrame objects, and apply advanced indexing techniques.
* Apply robust techniques to import data from various sources (CSV, JSON, Excel) and manage data types and missing values effectively.
* Master data cleaning operations such as filtering, sorting, grouping, aggregation, and reshaping data using pivoting and merging.
* Practice handling time-series data, including date parsing, frequency conversion, and time-based indexing.
* Configure effective Python virtual environments for managing dependencies and ensuring project reproducibility.
* Build foundational analytical pipelines using method chaining for clean, readable, and efficient data transformations.
The course begins by setting up your Python environment and covering fundamental Pandas data structures and concepts. We then move step-by-step through practical data ingestion, comprehensive cleaning workflows, advanced transformations, and preparing data for final analysis. This course is designed for absolute beginners in data analysis or Python users new to the Pandas library. No prior experience with professional data science tools is required.
Start your journey toward becoming a data-savvy Python user today.
What you'll get
📜Certificate of completion Add it to your LinkedIn profile
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⚡Short & focused 2h 48m of practical content
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