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Data Visualization and Modeling in Python
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Data Visualization and Modeling in Python

This course is part of Programming for Python Data Science: Principles to Practice.

Course Cost

Free course

Intermediate

Skill Level

31 Hours

Self-paced lessons

This course cannot be purchased separately - to access the complete learning experience, graded assignments, and earn certificates, you'll need to enroll in the full Programming for Python Data Science: Principles to Practice Specialization program. You can audit this specific course for free to explore the content, which includes access to course materials and lectures. This allows you to learn at your own pace without any financial commitment.

What you'll learn

  • Create professional visualizations for various types of data using matplotlib

  • Implement and evaluate K-Nearest Neighbors algorithms for classification

  • Apply regression techniques to analyze relationships between variables

  • Customize plots for effective data communication

  • Build predictive models from scratch in Python

  • Differentiate between prediction and inference in data science context

  • Prepare and merge multiple datasets for comprehensive analysis

  • Develop publication-quality data visualizations for a portfolio

Skills you'll gain

Data Visualization
Matplotlib
K-Nearest Neighbors
Linear Regression
Classification
Python Programming
Predictive Modeling
Seaborn
Statistical Analysis
Machine Learning

This course includes:

2.07 Hours PreRecorded video

4 assignments

Access on Mobile, Tablet, Desktop

FullTime access

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Get a Completion Certificate

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Certificate

Get a Completion Certificate

Share your certificate with prospective employers and your professional network on LinkedIn.

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There are 4 modules in this course

This comprehensive course bridges the gap between programming and data science by teaching advanced visualization and modeling techniques in Python. Students begin with an extensive exploration of plotting using matplotlib, learning to create and customize a variety of visualizations from basic line, bar, and scatter plots to more complex histograms and heatmaps. The second module introduces predictive modeling with a focus on K-Nearest Neighbors (KNN) algorithms for both classification and regression tasks, including implementation from scratch and evaluation methodologies. The third module covers statistical modeling with linear regression for both prediction and inference, teaching students to implement regression models and interpret relationships between variables. The course culminates in a capstone project where students integrate all learned skills to recreate a famous Gapminder visualization by merging multiple datasets to illustrate the relationship between countries' income and greenhouse gas emissions. Throughout, students gain hands-on experience through interactive assignments, live coding demonstrations, and real-world data analyses, building a foundation for a career in data science.

Plotting

Module 1 · 11 Hours to complete

Prediction

Module 2 · 9 Hours to complete

Regression

Module 3 · 5 Hours to complete

Final Project

Module 4 · 4 Hours to complete

Fee Structure

Individual course purchase is not available - to enroll in this course with a certificate, you need to purchase the complete Professional Certificate Course. For enrollment and detailed fee structure, visit the following: Programming for Python Data Science: Principles to Practice

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Faculties

These are the expert instructors who will be teaching you throughout the course. With a wealth of knowledge and real-world experience, they're here to guide, inspire, and support you every step of the way. Get to know the people who will help you reach your learning goals and make the most of your journey.

Data Visualization and Modeling in Python

Intermediate

Skill Level

31 Hours

Self-paced lessons

Course Cost

Free course

Completion

CERTIFICATE

Frequently asked Questions

Below are some of the most commonly asked questions about this course. We aim to provide clear and concise answers to help you better understand the course content, structure, and any other relevant information. If you have any additional questions or if your question is not listed here, please don't hesitate to reach out to our support team for further assistance.