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DeTikZify: Synthesizing Graphics Programs for Scientific Figures and Sketches with TikZ

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abstract

Creating high-quality scientific figures can be time-consuming and challenging, even though sketching ideas on paper is relatively easy. Furthermore, recreating existing figures that are not stored in formats preserving semantic information is equally complex. To tackle this problem, we introduce DeTikZify, a novel multimodal language model that automatically synthesizes scientific figures as semantics-preserving TikZ graphics programs based on sketches and existing figures. To achieve this, we create three new datasets: DaTikZv2, the largest TikZ dataset to date, containing over 360k human-created TikZ graphics; SketchFig, a dataset that pairs hand-drawn sketches with their corresponding scientific figures; and MetaFig, a collection of diverse scientific figures and associated metadata. We train DeTikZify on MetaFig and DaTikZv2, along with synthetically generated sketches learned from SketchFig. We also introduce an MCTS-based inference algorithm that enables DeTikZify to iteratively refine its outputs without the need for additional training. Through both automatic and human evaluation, we demonstrate that DeTikZify outperforms commercial Claude 3 and GPT-4V in synthesizing TikZ programs, with the MCTS algorithm effectively boosting its performance. We make our code, models, and datasets publicly available.

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cs.CV 1

years

2025 1

verdicts

CONDITIONAL 1

representative citing papers

AutoPresent: Designing Structured Visuals from Scratch

cs.CV · 2025-01-01 · conditional · novelty 6.0

AutoPresent is an open 8B model trained on a new 7k-example benchmark, SlidesBench, that generates presentation slides from natural language and performs comparably to GPT-4o in one of three evaluation settings.

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  • AutoPresent: Designing Structured Visuals from Scratch cs.CV · 2025-01-01 · conditional · none · ref 7 · internal anchor

    AutoPresent is an open 8B model trained on a new 7k-example benchmark, SlidesBench, that generates presentation slides from natural language and performs comparably to GPT-4o in one of three evaluation settings.