Machine Learning and Classification for QA

Hi everyone.
I just started looking into machine learning and classification. For a small project I have different grayscale images showing different shapes that are formed by a collimator. I know want to evaluate how accurate the collimator forms the shapes (allowed tolerance is +-2mm). My idea was to train my model what is in the spects and what is not.
As mentioned, I have just started reading about machine learning, and I don't know where to start. How should my classifiers or training data look like, and which machine learning approach should I choose?
Thanks in advance for any advice!
Kind regards,
Mike

Answers (2)

Have you taken the online Deep Learning on-ramp the Mathworks web site offers? That's where I'd start.

1 Comment

Hi and thanks for the great advice.
I wasn't aware of this tutorial! Seems like a good starting point. :-)
Regards,
Michael

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TASKUse the transform function to create a transformed datastore called preprocds. This datastore should apply the scale function to the data referenced by letterds.

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How is this an answer to Mike's two year old question? I think you posted this as an Answer when it should have been posted as a new question after you've read the guidelines on the asking form page.

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Asked:

on 26 Jun 2018

Edited:

on 20 Jun 2020

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