How to create a binary svm classifier?

I have 5 sets of data each with 3 runs of eeg signal acquisitions, and I'm to create a classifier that will distinguish between the rest and mental activity in each run. So first ten seconds are mental activity and then rest for 20s. The class labels are given but its just [1 2 1 2 1 2 1 2 1 2 1 2] for class 1 being mental activity and 2 being rest, for all runs and subjects? To use fitcsvm I need the Y labels array but am not sure how to get that

Answers (2)

The Y labels vector is the same as the class labels vector.

4 Comments

This was given along with the data; does it change after filtering or putting all the training signals into a single matrix?
Do any of those operations change the column's identification as belonging to mental activity or rest?
Somaia Ahmadi
Somaia Ahmadi on 18 Jul 2017
Edited: Somaia Ahmadi on 18 Jul 2017
Nope it should still be mental activity or rest, but I'm worried that if I put all the runs from each subjects together in one matrix the class labels won't apply..
As long as you keep columns separate you will be fine. (Each column is an individual sample.)

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Did you try the Classification Learner app, on the Apps tab, and have the wizard export the code for you?

1 Comment

Yeah I did, but it wasn't able to find the response variable (which I assume is the class label vectors in the cell array containing the signals)

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Asked:

on 18 Jul 2017

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on 18 Jul 2017

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