Back to Cluster Analysis in Data Mining
University of Illinois Urbana-Champaign

Cluster Analysis in Data Mining

Discover the basic concepts of cluster analysis, and then study a set of typical clustering methodologies, algorithms, and applications. This includes partitioning methods such as k-means, hierarchical methods such as BIRCH, and density-based methods such as DBSCAN/OPTICS. Moreover, learn methods for clustering validation and evaluation of clustering quality. Finally, see examples of cluster analysis in applications.

Status: Unsupervised Learning
Status: Statistical Methods
Course17 hours

Featured reviews

RG

4.0Reviewed Jan 24, 2021

The material is too general, does not provide examples. So it's difficult when doing the exam.

PR

4.0Reviewed Jul 27, 2020

Covers great deal of topics and various aspects of clustering

UG

4.0Reviewed Apr 27, 2019

Its Good but explanations can done much better, rest all good in terms of study material, quiz ,and programming assignment.

GV

5.0Reviewed Sep 18, 2017

Very informative lectures, wonderful assignments. This course isn't so easy but it gives you real knowledge and useful experience.

SS

4.0Reviewed Sep 6, 2017

Very detailed introduction of Clustering techniques.

DD

5.0Reviewed Sep 24, 2017

A very good course, it gives me a general idea of how clustering algorithm work.

CA

5.0Reviewed Oct 3, 2020

Awesome !!! Great course about clustering analysis.

DB

4.0Reviewed Mar 9, 2019

Useful theory. It will be challenging for non-math students. and also lecturer's native language influence iis going to be challening as well to follow along.

MU

5.0Reviewed Aug 26, 2023

A tough course regarding programming assignment and few quiz.

TK

5.0Reviewed Oct 9, 2017

Very intense and required complex thinking and programming skill

A

4.0Reviewed Nov 6, 2016

The course is very insightful and very helpful for the data mining studies at university courses.

AS

4.0Reviewed Dec 15, 2019

Good course. Some of the slides have value errors. Explanations for the programming assignments could be better.

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