This course covers the essential exploratory techniques for summarizing data. These techniques are typically applied before formal modeling commences and can help inform the development of more complex statistical models. Exploratory techniques are also important for eliminating or sharpening potential hypotheses about the world that can be addressed by the data. We will cover in detail the plotting systems in R as well as some of the basic principles of constructing data graphics. We will also cover some of the common multivariate statistical techniques used to visualize high-dimensional data.

Exploratory Data Analysis

Exploratory Data Analysis
This course is part of multiple programs.



Instructors: Roger D. Peng, PhD +2 more
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6,091 reviews
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
- Category: Unsupervised Learning
- Category: Data Analysis
- Category: Dimensionality Reduction
- Category: Statistical Visualization
- Category: Exploratory Data Analysis
- Category: Statistical Methods
- Category: Graphing
- Category: Data Visualization Software
- Category: Data Visualization
- Category: Statistical Analysis
- Category: Plot (Graphics)
Tools you'll learn
- Category: R (Software)
- Category: Ggplot2
- Category: R Programming
Details to know

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Reviewed on Jan 17, 2016
Very nice course, plotting data to explore and understand various features and their relationship is the key in any research domain, and this course teaches the skill required to achieve this.
Reviewed on Jun 5, 2017
This was incredibly useful because it gives you a feel for the datasets and tools with which to explore them. I really wasn't aware of the base and lattice plotting systems until now.
Reviewed on Jan 11, 2017
I did learn more about putting together a set of graphs that help to explore the data. I did see how subsetting and aggregating data helps to give a better understanding of the data.
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