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Exploring MLLMs Perception of Network Visualization Principles
IEEE Transactions on Visualization and Computer Graphics
|April 8, 2026
Summary
Multimodal Large Language Models (MLLMs) show human-like perception of network layout quality. These AI models, including GPT-4o, match expert human performance, demonstrating a facsimile of visual perception.
Area of Science:
- Artificial Intelligence
- Computer Vision
- Network Science
Background:
- Assessing the quality of network layouts is crucial for understanding complex systems.
- Human perception of network properties, like stress, is well-documented but computationally challenging to replicate.
- Multimodal Large Language Models (MLLMs) offer new possibilities for analyzing visual data.
Purpose of the Study:
- To evaluate if MLLMs can match human performance in perceiving properties of network layouts.
- To compare MLLM performance against both human experts and non-experts.
- To investigate the perceptual mechanisms employed by MLLMs in network analysis.
Main Methods:
- Replication of a human-subject experiment on network layout quality perception.
- Utilizing advanced MLLMs such as GPT-4o, Gemini-2.5, and Qwen2.5.
- Controlled experimental setup providing identical information to MLLMs and human participants.
Main Results:
- MLLMs achieved performance comparable to trained human experts.
- MLLM performance surpassed that of untrained human non-experts.
- Prompt engineering modifications led to superior-than-human performance in specific scenarios.
- MLLMs appeared to use visual proxies, similar to humans, rather than direct stress value computation.
Conclusions:
- MLLMs demonstrate a significant capacity for perceiving network layout properties, mirroring human visual perception.
- The findings suggest MLLMs can serve as valuable tools for network analysis and quality assessment.
- Further research into MLLM perceptual mechanisms and prompt engineering is warranted for enhanced AI capabilities.
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