Slicing and Indexing Time Series Data in Pandas
Learn how to navigate, filter, and manipulate time-based datasets using Pandas DatetimeIndex, partial string indexing, and timezone alignment.
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Tungkol sa kursong ito
Working with date and time data can be one of the most frustrating parts of data analysis. Mastering how to index and slice time-based data cleanly is essential for writing efficient, readable data pipelines in Python.
This text-based course guides you from the fundamental concepts of temporal data structures to advanced slicing techniques. You will gain the confidence to manipulate large datasets, handle timezones seamlessly, and perform precise date arithmetic without common errors.
What you'll learn:
- Understand the core architecture of Pandas DatetimeIndex and PeriodIndex
- Apply partial string indexing to quickly filter data by year, month, or custom ranges
- Manage timezone-naive and timezone-aware datasets with confidence
- Perform date arithmetic and shift time series data backward or forward
- Implement modern Pandas practices for cleaner, more readable time-series code
The course begins with foundational definitions of temporal data types in Python before moving into hands-on indexing techniques and timezone localization strategies. You will read clear explanations and study practical code snippets that you can apply directly to your own data workflows.
This course is designed for beginner-to-intermediate Python developers and data analysts who want to strengthen their data manipulation skills. A basic familiarity with Python variables and introductory Pandas is helpful, but no prior time series experience is required.
Start writing cleaner, faster time series queries today.
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2 oras 36 min ng practical content
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