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Clustering
and Classification
Course
Description
Clustering
and Classification methods are used to determine the similarity
or dissimilarity among samples. Clustering methods are usually exploratory
analysis methods which elucidate the similarity within a set of
samples. They are often used to determine if there are natural groupings
and/or particularly unique individuals or groups within a set. Classification,
on the other hand, uses data with known group assignments and attempts
to determine which group(s), if any, a new sample belongs to. This
course will discuss various clustering and classification methods
and the practical considerations for using them. The course includes
hands-on computer time for participants to work example problems
using PLS_Toolbox.
Prerequisites
MATLAB
for Chemometricians and Chemometrics
II--Regression and PLS or equivalent experience.
Clustering
and Classification Course Outline
Linear
Discriminant Analysis
K-Nearest Neighbors (KNN)
K-Means
SIMCA
PLS Discriminant Analysis
Complex Classification Problems
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