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Leveraging Generative AI for Extracting Process Models from Multimodal Documents

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arxiv 2406.04959 v1 pith:JRANFODL submitted 2024-06-07 cs.SE

classification cs.SE
keywords evaluationprocesscapabilitiesmulti-modaldatasetgenerativegptsinputs
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This paper presents an investigation of the capabilities of Generative Pre-trained Transformers (GPTs) to auto-generate graphical process models from multi-modal (i.e., text- and image-based) inputs. More precisely, we first introduce a small dataset as well as a set of evaluation metrics that allow for a ground truth-based evaluation of multi-modal process model generation capabilities. We then conduct an initial evaluation of commercial GPT capabilities using zero-, one-, and few-shot prompting strategies. Our results indicate that GPTs can be useful tools for semi-automated process modeling based on multi-modal inputs. More importantly, the dataset and evaluation metrics as well as the open-source evaluation code provide a structured framework for continued systematic evaluations moving forward.

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Cited by 1 Pith paper

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. What is the Best Process Model Representation? A Comparative Analysis for Process Modeling with Large Language Models

    cs.CL 2025-07 conditional novelty 6.0 of 10

    A new dataset and head-to-head comparison of nine process model representations with LLMs finds Mermaid best for general use and BPMN text best for generation.

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