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I would honestly skip old the optionals (other than the reproducible weight initialisation maybe) and focus instead on polishing the stuff that's already there*. For instance, these problems with tf 2.16 / python 3.12, they will only grow as keras 3 becomes the standard. Making sure that things like multidense / multireplica fits are robust and that we don't "lose them" when keras 3.1 comes out is important.
(and, as with anything that touches the under-the-hood tensorflow, like all the Meta-whatever stuff, it will have many chances to break)
*actually, I would say the weight initialization is part of this polishing
Finalizing eScience contributions
Since our time is running out, we thought it would be useful to have an overview of our remaining PRs, separated into essentials and optionals.
I think our main priority should be to get the essentials merged and have a tag from which to start the final runs for the paper.
Essentials
Optional, if time allows
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