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Unsupervised Learning in R

Intermediate
4.9+
16 reviews
Updated 05/2025
This course provides an intro to clustering and dimensionality reduction in R from a machine learning perspective.
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RMachine Learning4 hours16 videos49 Exercises3,600 XP52,435Statement of Accomplishment

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Course Description

Many times in machine learning, the goal is to find patterns in data without trying to make predictions. This is called unsupervised learning. One common use case of unsupervised learning is grouping consumers based on demographics and purchasing history to deploy targeted marketing campaigns. Another example is wanting to describe the unmeasured factors that most influence crime differences between cities. This course provides a basic introduction to clustering and dimensionality reduction in R from a machine learning perspective, so that you can get from data to insights as quickly as possible.

Prerequisites

Introduction to R
1

Unsupervised learning in R

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2

Hierarchical clustering

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3

Dimensionality reduction with PCA

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4

Putting it all together with a case study

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Unsupervised Learning in R
Course
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*4.9
from 16 reviews
94%
6%
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  • Gulbanu
    1 day

  • Aaron
    10 days

  • Md
    29 days

  • Kristoffer Frahm
    29 days

  • Christoph
    about 1 month

  • Omar
    8 days

Gulbanu

Aaron

Md

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