๐ Iโm pleased to announce a new preprint!
"SKADA-Bench: Benchmarking Unsupervised Domain Adaptation Methods with Realistic Validation On Diverse Modalities"
๐ข Check it out & contribute!
๐ Paper: arxiv.org/abs/2407.11676
๐ป Code: github.com/scikit-adapt...
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๐ Meet skoreโthe @scikit-learn.org sidekick!
๐น Offers guidance on modeling
๐น Automated reports & key metrics
๐ก Built by scikit-learn maintainers. Open-source & ready to use!
Try it ๐ tinyurl.com/bdhszwtn
With some help (and terrifying but so nice code reviews) from @agramfort.bsky.social we made it a proper Python library with a documentation and an example gallery. pythonot.github.io/auto_example...
Great science and friends moments this year at @neuripsconf.bsky.social see you next year ๐
I will be at @neuripsconf.bsky.social 2024 in Vancouver next week. Ping me if you want to grab โ๏ธ or๐บ and chat about ML stuff for biosignals (EMG, EEG, MEG, โฆ)
See you there ๐
Next week, weโll present our spotlight paper at #NeurIPS2024 on domain adaptation for EEG data. Join us in East Exhibit Hall A-C on Friday at 4:30 PM!
arxiv.org/abs/2407.03878
Apolline Mellot @sylvchev.bsky.social @agramfort.bsky.social @dngman.bsky.social
A thread: 1/7
Anne Gagneux, Sรฉgolรจne Martin, @quentinbertrand.bsky.social Remi Emonet and I wrote a tutorial blog post on flow matching: dl.heeere.com/conditional-... with lots of illustrations and intuition!
We got this idea after their cool work on improving Plug and Play with FM: arxiv.org/abs/2410.02423