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[ARTICLE · art-94755] src=arxiv.org ↗ pub= topic=artificial-intelligence verified=true sentiment=· neutral

AutoWorldModel-Bench: A State-Centric Benchmark for Automated World-Model Research

Researchers introduced AutoWorldModel-Bench, a closed-loop benchmark for evaluating AI coding agents as autonomous researchers, spanning eight game environments with a unified structured-state representation. Across 64 sessions, Codex-5.4 and Claude Opus 4.6 improved their starter in 63 sessions, with 91% of winning edits being non-trivial research-style modifications rather than hyperparameter tweaks.

read1 min views1 publishedAug 13, 2026

arXiv:2608.11216v1 Announce Type: new Abstract: World modeling is an unsettled field: architectures, training objectives, and state representations interact in complex ways, and no single recipe dominates across environments. This makes it an ideal testbed for AI coding agents acting as autonomous researchers--a setting in which the improvement direction is not specified in advance, unlike the engineering-to-spec tasks that dominate current agent benchmarks. We introduce AutoWorldModel-Bench, a closed-loop benchmark in which frontier coding agents autonomously improve a provided world-model starter under a fixed compute budget. The benchmark spans eight game environments under a unified structured-state representation--ground-truth entity state extracted from each game and consumed through a shared tensor format--which isolates dynamics modeling from perception and enables minutes-per-run iteration. Across 64 sessions, Codex-5.4 and Claude Opus 4.6 improve their starter on 63; in 91% of sessions the winning edit is a non-trivial research-style modification--a new objective, representation, rollout procedure, or architectural change--rather than a hyperparameter tweak. Our benchmark offers a setting in which frontier coding agents can be evaluated on open-ended research rather than engineering-to-spec problems.

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