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Would a 3D CNN require less training samples than a corresponding 2D CNN?

Cross Validated Asked by Alexander Soare on January 8, 2021

I’m working with a problem where I only have several hundred training samples. That already sounds absurdly low, but I’m thinking:

  • The relevant details for the problem are local patches within the 3d volume, rather than a single global feature.
  • Since I have a 3D volume, the amount of data is effectively scaled up by the number of slices. So if I have 40 slices, it’s more like I have several thousand samples rather than several hundred.
  • With augmentation I can push that up further.

Am I being overly hopeful here, or is there some truth in my thesis? Any papers to support?

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