GPT-5 Model Corrected GPT-4V's Chart Reading Errors, Not Prompting
October 08, 2025 Β· Declared Dead Β· π arXiv.org
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Authors
Kaichun Yang, Jian Chen
arXiv ID
2510.06782
Category
cs.HC: Human-Computer Interaction
Cross-listed
cs.CL,
cs.CV
Citations
0
Venue
arXiv.org
Last Checked
4 months ago
Abstract
We present a quantitative evaluation to understand the effect of zero-shot large-language model (LLMs) and prompting uses on chart reading tasks. We asked LLMs to answer 107 visualization questions to compare inference accuracies between the agentic GPT-5 and multimodal GPT-4V, for difficult image instances, where GPT-4V failed to produce correct answers. Our results show that model architecture dominates the inference accuracy: GPT5 largely improved accuracy, while prompt variants yielded only small effects. Pre-registration of this work is available here: https://osf.io/u78td/?view_only=6b075584311f48e991c39335c840ded3; the Google Drive materials are here:https://drive.google.com/file/d/1ll8WWZDf7cCNcfNWrLViWt8GwDNSvVrp/view.
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