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VisualPRM: An Effective Process Reward Model for Multimodal Reasoning

About

We introduce VisualPRM, an advanced multimodal Process Reward Model (PRM) with 8B parameters, which improves the reasoning abilities of existing Multimodal Large Language Models (MLLMs) across different model scales and families with Best-of-N (BoN) evaluation strategies. Specifically, our model improves the reasoning performance of three types of MLLMs and four different model scales. Even when applied to the highly capable InternVL2.5-78B, it achieves a 5.9-point improvement across seven multimodal reasoning benchmarks. Experimental results show that our model exhibits superior performance compared to Outcome Reward Models and Self-Consistency during BoN evaluation. To facilitate the training of multimodal PRMs, we construct a multimodal process supervision dataset VisualPRM400K using an automated data pipeline. For the evaluation of multimodal PRMs, we propose VisualProcessBench, a benchmark with human-annotated step-wise correctness labels, to measure the abilities of PRMs to detect erroneous steps in multimodal reasoning tasks. We hope that our work can inspire more future research and contribute to the development of MLLMs. Our model, data, and benchmark are released in https://internvl.github.io/blog/2025-03-13-VisualPRM/.

Weiyun Wang, Zhangwei Gao, Lianjie Chen, Zhe Chen, Jinguo Zhu, Xiangyu Zhao, Yangzhou Liu, Yue Cao, Shenglong Ye, Xizhou Zhu, Lewei Lu, Haodong Duan, Yu Qiao, Jifeng Dai, Wenhai Wang• 2025

Related benchmarks

TaskDatasetResultRank
Multimodal UnderstandingMMBench
Accuracy83.5
847
Multimodal UnderstandingMMMU
Accuracy56.2
437
Chart Question AnsweringChartQA
Accuracy60.8
371
Mathematical ReasoningGSM8K
Accuracy (Acc)94.5
337
Hallucination EvaluationAMBER--
222
Multimodal ReasoningMMMU
Accuracy60.2
208
Multimodal ReasoningWeMath
Accuracy46.2
171
Multimodal ReasoningMathVision
Accuracy35.2
162
Multimodal ReasoningLogicVista
Accuracy53.7
147
Multimodal ReasoningMMStar
Accuracy63.4
143
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