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Thinking with Comics: Enhancing Multimodal Reasoning through Structured Visual Storytelling

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Chain-of-Thought reasoning has driven large language models to extend from thinking with text to thinking with images and videos. However, different modalities still have clear limitations: static images struggle to represent temporal structure, while videos introduce substantial redundancy and computational cost. In this work, we propose Thinking with Comics, a visual reasoning paradigm that uses comics as a high information-density medium positioned between images and videos. Comics preserve temporal structure, embedded text, and narrative coherence while requiring significantly lower reasoning cost. We systematically study two reasoning paths based on comics and evaluate them on a range of reasoning tasks and long-context understanding tasks. Experimental results show that Thinking with Comics outperforms Thinking with Images on multi-step temporal and causal reasoning tasks, while remaining substantially more efficient than Thinking with Video. Further analysis indicates that different comic narrative structures and styles consistently affect performance across tasks, suggesting that comics serve as an effective intermediate visual representation for improving multimodal reasoning.

Andong Chen, Wenxin Zhu, Qiuyu Ding, Yuchen Song, Muyun Yang, Tiejun Zhao• 2026

Related benchmarks

TaskDatasetResultRank
Mathematical ReasoningMathVista
Accuracy85.8
97
ReasoningGSM8K
Accuracy1
83
ReasoningMATH 500
Accuracy (%)92.3
59
Context UnderstandingCulturalBench
Easy Accuracy0.883
10
Context UnderstandingDocVQA
Accuracy0.994
8
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