This intermediate-level course is designed to help learners analyze, visualize, and interpret data distributions using the powerful Seaborn library in Python. Building upon foundational knowledge of data visualization, the course takes a hands-on approach to explore univariate and bivariate distributions, apply linear and polynomial regression models, and demonstrate advanced statistical plots such as KDE plots, pairplots, jointplots, and lmplots.

Seaborn Python: Visualize & Analyze Data Distributions

位教师:EDUCBA
访问权限由 New York State Department of Labor 提供
您将学到什么
Analyze and visualize univariate and bivariate data distributions in Seaborn.
Build regression-based visualizations to model and interpret relationships.
Customize statistical plots using hue, facet grids, and styling for insights.
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4 项作业
August 2025
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该课程共有1个模块
This module delves into intermediate-level data visualization techniques using the Seaborn library in Python. It focuses on building upon basic plotting knowledge by introducing the concepts of univariate and bivariate distributions, linear regression models, and multi-variable visualizations. Learners will gain practical experience with statistical graphics such as KDE plots, pairplots, and jointplots, enabling them to analyze and communicate insights from complex datasets. The module emphasizes hands-on plotting strategies that enhance data exploration and visual storytelling.
涵盖的内容
9个视频1篇阅读材料4个作业
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