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Data Visualization and Modeling in Python
Coursera
Course
Unknown

Data Visualization and Modeling in Python

Duke University

Master data visualization and modeling in Python to enhance data science skills with practical use of classification algorithms like KNN.

Unknown4 weeksKK, Arabic, German, UZ

About this Course

Put the keystone in your Python Data Science skills by becoming proficient with Data Visualization and Modeling. This course is suited for intermediate programmers, who have some experience with NumPy and Pandas, that want to expand their skills for any career in data science. Whether you come to data science through social sciences and Statistics, or from a programming background, this course will integrate the two perspectives and offer unique insights from each. You’ll begin by becoming adept with matplotlib, an essential plotting library in Python that will enable you to discover and communicate insights about data effectively. You’ll progress to classification algorithms by creating a K-Nearest Neighbors (KNN) classifier, a foundational algorithm used in data science and machine learning. Finally, you will write Python programs that leverage your newfound data science skills based on inferential statistics, and be able to describe relationships between variables in your data. By the end of the course, you’ll be able to quickly visualize a dataset, explore it for insights, determine relationships between data, and communicate it all with effective plots. In the last module of this course, you’ll produce a publication-quality figure based on data that you’ve prepared and cleaned yourself; the first artifact in your data science portfolio. Throughout this course you’ll get plenty of hands-on experience through interactive programming assignments, live coding demos from data scientists, and analyzing the data behind important real-world problems (like carbon emissions, real estate prices, and infant mortality). Guided activities throughout each module will reinforce your proficiency with data science techniques and analytical approach as a data scientist. Solidify your understanding of these critical data science concepts and begin your data science portfolio by mastering visualization and modeling. Start this integrative and transformative learning journey today!

What You'll Learn

  • Create professional visualizations for various data types
  • Utilize classification algorithms to make predictions using datasets
  • Communicate insights about data effectively

Prerequisites

  • Basic familiarity with topic terminology
  • Readiness to practice with exercises or case studies

Instructors

G

Genevieve M. Lipp

Assistant Professor of the Practice

N

Nick Eubank

Assistant Research Professor

K

Kyle Bradbury

Assistant Research Professor

A

Andrew D. Hilton

Associate Professor of the Practice

Topics

Data Analysis
Data Science
Algorithms
Computer Science
Matplotlib
Predictive Modeling
Pandas (Python Package)
Predictive Analytics
Classification Algorithms
Data Visualization

Course Info

PlatformCoursera
LevelUnknown
PacingUnknown
PriceFree

Skills

تحليل البيانات
علم البيانات
الخوارزميات
علوم الحاسب
matplotlib
النمذجة التنبؤية
Pandas
التحليل التنبؤي
Classification Algorithms
Data Visualization

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