ContextRL-Qwen3-VL-8B

This is the multimodal model released with the paper Context-Aware RL for Agentic and Multimodal LLMs.

It is fine-tuned from Qwen3-VL-8B-Instruct using ContextRL, a context-aware reinforcement learning method that augments standard GRPO with an auxiliary context-selection objective to improve fine-grained visual grounding.

Results

Across 12 diverse multimodal benchmarks, ContextRL improves over the standard GRPO baseline by +1.6 points on average, while improving every individual benchmark.

Benchmark Base RL (GRPO) ContextRL (Ours)
MathVista 75.8 78.7 79.8
MathVerse 56.1 65.0 66.4
MathVision 46.2 49.2 52.0
MMMU-Pro 41.3 55.9 57.5
MMMU 66.4 69.1 70.1
V* 82.2 84.8 85.9
MMStar 70.5 73.5 74.8
BLINK 64.4 65.1 66.6
ScienceQA 94.4 95.6 96.6
PhyX 45.5 72.1 73.4
OlympiadBench Phy 7.9 8.1 9.9
MME-RealWorld Lite 48.7 51.9 54.8
Overall Avg. 58.3 64.1 65.7

Usage

This model follows the same interface as Qwen3-VL-8B-Instruct and can be loaded with transformers. Training and evaluation code, data construction pipelines, and detailed configurations are available in the repository:

👉 https://github.com/xupy2003/ContextAwareRL

Please refer to the repo's README for environment setup, inference scripts, and reproduction instructions.

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