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По умолчанию Matplotlib For Data Science Visualize Analyze, Present Data


Matplotlib For Data Science: Visualize Analyze, Present Data
Last updated 2/2026
MP4 | Video: h264, 1920x1080 | Audio: AAC, 44.1 KHz, 2 Ch
Language: English | Duration: 2h 31m | Size: 1.9 GB
Learn to Build Meaningful Charts & Graphs Using Python & Matplotlib, Visualization Skill for Data Science, Analytic & ML

What you'll learn
How to create a wide variety of charts and plots using Matplotlib in Python.
how to customize visualizations with titles, labels, colors, legends, and styles.
the ability to analyze datasets visually to identify trends, patterns, and outliers.
how to present data clearly and professionally for reports and presentations.
able to build publication-ready visualizations for real-world data projects.
Requirements
Basic knowledge of Python programming is recommended, but no prior experience with Matplotlib or data visualization is required.
Description
Data is powerful - but only when you can understand it, analyze it, and communicate it clearly.
This course, Matplotlib for Data Science: Visualize, Analyze, Present Data, is designed to help you master one of the most important skills in the data world: data visualization using Python's Matplotlib library.
Whether you are a student, aspiring data scientist, analyst, or developer, this course will give you the practical skills needed to turn raw datasets into meaningful and visually appealing insights.
Why Data Visualization Matters
In real-world Data Science, it's not enough to build models or compute statistics - you must also present your findings clearly to others. Matplotlib is the foundation of almost all Python visualization libraries, and mastering it will make learning Seaborn, Plotly, and other tools much easier.
This course focuses not only on how to create plots, but also how to design them effectively so your audience understands your message instantly.
What You Will Learn
In this course, you will
• Understand the fundamentals of Matplotlib and how it works
• Create essential plots: line charts, bar charts, scatter plots, histograms, pie charts, and more
• Customize charts with titles, labels, legends, colors, styles, and annotations
• Work with real-world datasets to explore and analyze data visually
• Learn best practices for making clean, professional, and publication-ready visuals
• Combine visualization with data analysis to support decision-making
• Export and present your plots for reports, presentations, and dashboards
Who this course is for
Python programmers who want to visualize data
Students learning Data Science or Machine Learning
Data analysts and engineers
Anyone interested in data visualization and analytics


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