Johns Hopkins University
Data Science: Foundations using R Specialization
Johns Hopkins University

Data Science: Foundations using R Specialization

Roger D. Peng, PhD
Brian Caffo, PhD
Jeff Leek, PhD

Instructors: Roger D. Peng, PhD

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Get in-depth knowledge of a subject
4.6

(6,181 reviews)

Beginner level
No prior experience required
4 months to complete
at 10 hours a week
Flexible schedule
Learn at your own pace
Get in-depth knowledge of a subject
4.6

(6,181 reviews)

Beginner level
No prior experience required
4 months to complete
at 10 hours a week
Flexible schedule
Learn at your own pace

What you'll learn

  • Use R to clean, analyze, and visualize data.

  • Learn how to ask the right questions, obtain data, and perform reproducible research.

  • Use GitHub to manage data science projects.

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Taught in English
35 practice exercises

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Specialization - 5 course series

What you'll learn

  • Set up R, R-Studio, Github and other useful tools

  • Understand the data, problems, and tools that data analysts use

  • Explain essential study design concepts

  • Create a Github repository

Skills you'll gain

R Programming, Data Analysis, Data Science, R (Software), Version Control, Rmarkdown, Statistical Programming, Data Literacy, Software Installation, GitHub, and Exploratory Data Analysis
R Programming

R Programming

Course 257 hours

What you'll learn

  • Understand critical programming language concepts

  • Configure statistical programming software

  • Make use of R loop functions and debugging tools

  • Collect detailed information using R profiler

Skills you'll gain

R Programming, Simulations, Performance Tuning, Debugging, Data Structures, Computer Programming Tools, Statistical Programming, Statistical Analysis, Data Import/Export, Programming Principles, Data Analysis, and Program Development
Getting and Cleaning Data

Getting and Cleaning Data

Course 319 hours

What you'll learn

  • Understand common data storage systems

  • Apply data cleaning basics to make data "tidy"

  • Use R for text and date manipulation

  • Obtain usable data from the web, APIs, and databases

Skills you'll gain

Data Manipulation, Data Import/Export, R Programming, Data Cleansing, Data Management, SQL, Application Programming Interface (API), Data Wrangling, Data Collection, MySQL, and Web Scraping
Exploratory Data Analysis

Exploratory Data Analysis

Course 455 hours

What you'll learn

  • Understand analytic graphics and the base plotting system in R

  • Use advanced graphing systems such as the Lattice system

  • Make graphical displays of very high dimensional data

  • Apply cluster analysis techniques to locate patterns in data

Skills you'll gain

Plot (Graphics), R Programming, Ggplot2, Exploratory Data Analysis, Box Plots, Data Visualization Software, Statistical Methods, Dimensionality Reduction, Scatter Plots, Unsupervised Learning, Statistical Visualization, Histogram, and Data Analysis
Reproducible Research

Reproducible Research

Course 57 hours

What you'll learn

  • Organize data analysis to help make it more reproducible

  • Write up a reproducible data analysis using knitr

  • Determine the reproducibility of analysis project

  • Publish reproducible web documents using Markdown

Skills you'll gain

Knitr, Rmarkdown, General Science and Research, R Programming, Statistical Reporting, Exploratory Data Analysis, Data Sharing, Version Control, Technical Communication, Data Validation, and Data Analysis

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Instructors

Roger D. Peng, PhD
Johns Hopkins University
37 Courses1,662,747 learners
Brian Caffo, PhD
Johns Hopkins University
30 Courses1,691,500 learners

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