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Couldn't agree more on the data size. In most cases beefy machine work. Would on-demand (cloud) make it simple? Also beefy machine works for training jobs. But
by raghavsb 8y ago
Couldn't agree more on the data size. In most cases beefy machine work. Would on-demand (cloud) make it simple?
Also beefy machine works for training jobs. But we need to deploy the models too.
- cup-of-tea 8y agoWith the many container solutions available today it's incredibly easy to move from dev to prod. You don't need to pay for a prod environment to do your development just to avoid ever having to migrate.
- anandology 8y agoYes, it is incredibly easy, except when you upgrade to tensorflow 1.6 and it fails with [a cuda error][1] and after couple of sleepless nights you realize nvidia has deleted the docker image of cuda version 70xx from dockerhub and you need to find the right commit that works from their git repo and build everything yourself. [1]: https://github.com/tensorflow/tensorflow/issues/17566 https://github.com/tensorflow/tensorflow/issues/17566