Pierre Alquier
Researcher with public evidence across AI research, AI business.
- AI signals
- 13 past 30d
- Sources
- 11 distinct domains
- Discussions
- 14 past 30d
- Latest signal
- 2d ago
Articles & links
Mehdi defends our recent preprint on rho-posteriors and their variational approximations at ISBA @Nagoya Link to the preprint: arxiv.org/abs/2601.07325
- Khribch and Alquier introduce a rho-tilde-posterior that swaps the supremum over competitor parameters for a softmax aggregation.
- The construction yields PAC-Bayesian finite-sample oracle inequalities with explicit convergence rates that survive model misspecification and data contamination.
- Those guarantees extend to variational approximations, with computational cost the authors report as comparable to standard variational Bayes.
Recent commentary
"These AI companies are proving theorems as ways to advertise for their models..." Correct, but I would argue that mathematicians prove theorems to be remembered as "the guy/girl who solved this 100 years old problem", get prizes and good jobs in top universities. Not so different.
We had a beautiful session on Markov chains in machine learning at the IMS Pacific Rim Meeting! Talks by Geoffrey Wolfer (Tokyo University of Agriculture and Technology), Vahe Karagulyan (ESSEC) and Daniel Paulin (NTU Singapore).
There's a new version of The Ring coming soon. This time I'm on TV and I'll crawl out, asking you to review papers written by AI
The session on Bayesian Deep Learning opens with a talk by Thomas Moellenhoff from RIKEN AIP 😊
Imon Banerjee stayed a few days at ESSEC to chat about Markov chains and machine learning. It was nice to have him here! 😊
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