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rewardmap-sparse-rewards-visual-reasoning

Improve multimodal LLMs on fine-grained visual reasoning tasks (e.g., reading transit maps) by decomposing training into stages: basic perception (VQA) -> simple reasoning -> complex spatial reasoning. Incorporates 'detail rewards' for intermediate visual understanding, bootstrapping models from simple to complex tasks while addressing sparse reward challenges.

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Source facts

Repository
ADu2021/skillXiv
Last source activity
March 24, 2026 at 19:42
Detected SKILL.md language
English
Stars
6
Forks
0

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