الباحثون

Jieming Mao

المنشورات 2

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Optimally Pacing Budget Spending and Learning

Mark Braverman, Jingyi Liu, Jieming Mao وآخرون · 2026

We establish near-optimal regret bounds for budget-constrained online learning against arbitrary classes of budget-pacing experts in the adversarial setting. In particular, given any class of $F$ experts and a candidate budget pacing schedule, we provide a full-information algorithm which obtains regret $O(D \sqrt{\log …

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Stellar Colosseum: A Many-Agent Harness for Long-Horizon Research in Mathematics and Theoretical Computer Science

Honghao Lin, David P. Woodruff, Yuan Deng وآخرون · 2026

Language models can produce plausible short proofs, but may still be unreliable on long-horizon research problems, where progress depends on a sequence of uncertain and interdependent decisions. We introduce Stellar Colosseum, a model-agnostic harness for allocating inference across research in mathematics and theoreti …

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