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Claim: gpt-5-pro can prove new interesting mathematics.
Proof: I took a convex optimization paper with a clean open problem in it and asked gpt-5-pro to work on it. It proved a better bound than what is in the paper, and I checked the proof it's correct.
Details below.
https://x.com/SebastienBubeck/status/1958198661139009862?t=m5Mzg_cRq9lLqgrx3yIzIQ&s=19
Claim: gpt-5-pro can prove new interesting mathematics.
Proof: I took a convex optimization paper with a clean open problem in it and asked gpt-5-pro to work on it. It proved a better bound than what is in the paper, and I checked the proof it's correct.
Details below.
https://x.com/SebastienBubeck/status/1958198661139009862?t=m5Mzg_cRq9lLqgrx3yIzIQ&s=19
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Sebastien Bubeck (@SebastienBubeck) on X
Claim: gpt-5-pro can prove new interesting mathematics.
Proof: I took a convex optimization paper with a clean open problem in it and asked gpt-5-pro to work on it. It proved a better bound than what is in the paper, and I checked the proof it's correct.…
Proof: I took a convex optimization paper with a clean open problem in it and asked gpt-5-pro to work on it. It proved a better bound than what is in the paper, and I checked the proof it's correct.…
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Михаил Бронштейн и ко написали практически учебник про геометрическое глубокое обучение. Выглядит очень достойно. Вдруг вы хотели почитать что-то по матчасти на выходных или в остаток лета.
Mathematical Foundations of Geometric Deep Learning
Authors: Haitz Sáez de Ocáriz Borde and Michael Bronstein
Paper: https://arxiv.org/abs/2508.02723
Русское саммари тут: https://news.1rj.ru/str/gonzo_ML_podcasts/714
Английское тут: https://arxiviq.substack.com/p/mathematical-foundations-of-geometric
Mathematical Foundations of Geometric Deep Learning
Authors: Haitz Sáez de Ocáriz Borde and Michael Bronstein
Paper: https://arxiv.org/abs/2508.02723
Русское саммари тут: https://news.1rj.ru/str/gonzo_ML_podcasts/714
Английское тут: https://arxiviq.substack.com/p/mathematical-foundations-of-geometric
arXiv.org
Mathematical Foundations of Geometric Deep Learning
We review the key mathematical concepts necessary for studying Geometric Deep Learning.
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