Learn to formulate hypotheses and apply statistical tests like ANOVA and Chi-Square to uncover insights using Python or SAS.
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このコースについて
Transforming raw information into actionable insights requires more than just looking at charts; it requires a solid understanding of statistical validity. This course provides a structured path for beginners to master the core tools used in professional data analysis, ensuring your conclusions are backed by mathematical rigor.
You will move from basic data exploration to performing essential statistical tests, gaining the confidence to choose the right methodology for any dataset. By the end of this course, you will be able to validate your findings, identify significant patterns, and communicate results with professional-grade statistical backing.
What you'll learn:
- Understand the fundamental principles of hypothesis testing and statistical significance
- Apply Analysis of Variance (ANOVA) to compare means across multiple groups
- Perform Chi-Square tests to examine relationships between categorical variables
- Calculate and interpret Pearson correlation coefficients to identify linear trends
- Practice data cleaning and preparation using modern Python libraries or SAS syntax
- Develop strategies for selecting the appropriate statistical test based on specific data types
The course begins with essential terminology and probability concepts before moving into written exercises that simulate real-world data scenarios. You will read through detailed explanations of how to implement these tests using industry-standard code and interpret the resulting outputs.
This course is designed for beginners interested in data science, social research, or business analytics, with no prior statistical background required. Start building your data analysis toolkit today.
得られるもの
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⚡短く要点だけ 2時間48分の実践的な内容
レビュー (6)
Kiss Judit
HU
★ 3 · 25.07.2026
It's a decent introduction. Could benefit from more diverse examples and a slightly better flow between modules.