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Differentiable version of FNMR@FMR metric to use it as loss #246

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AlekseySh opened this issue Nov 30, 2022 · 6 comments
Open

Differentiable version of FNMR@FMR metric to use it as loss #246

AlekseySh opened this issue Nov 30, 2022 · 6 comments
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@AlekseySh
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AlekseySh commented Nov 30, 2022

A paper for inspiration: link.

@AlekseySh AlekseySh added this to To do in OML-planning via automation Nov 30, 2022
@AlekseySh AlekseySh moved this from To do to backlog in OML-planning Nov 30, 2022
@AlekseySh AlekseySh added the good first issue Good for newcomers label Dec 6, 2022
@deepslug
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Any updates/progress on this?

@AlekseySh
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@deepslug Nope, not enough resources. Do you want to try it? If so, the idea is that we want to adapt the approach from this paper and make FNMR@FMR metric differentiable.

@deepslug
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Unfortunately, I don't have enough resources either, but this is something I’d bring on top of my (and hopefully your) list!

@AlekseySh
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Got it!

@deepslug
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As I mentioned in my previous comment on the post, I work in the field of biometrics and am keen on seeing the differential version of FNMR@FMR as it can directly optimize the metric. Given the recent active development of OML, I wanted to add this comment to bump up the thread :)

@AlekseySh
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@deepslug thank you for you comment. I'd like to add that we've already implemented similar idea in OML. There is SurrogatePricisonLoss -- differentiable version of Precision metric. Experiments showed it was able to perform on SOTA level. So, it would be interesting to apply similar idea to FNMR@FMR.

Contributors are welcome!

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