Maksim Elistratov, Marina Barannikov
Computer-Aided Design (CAD) delivers rapid, editable modeling for engineering and manufacturing. Recent AI progress now makes full automation feasible for various CAD tasks. However, progress is bottlenecked by data: public corpora mostly contain sketch–extrude sequences, lack complex operations, multi-operation composition and design intent, and thus hinder effective fine-tuning. Attempts to bypass this with frozen VLMs often yield simple or invalid programs due to limited 3D grounding in current foundation models. We present CADEvolve, an evolution-based pipeline and dataset that starts from simple primitives and, via VLM-guided edits and validations, incrementally grows CAD programs toward industrial-grade complexity. The result is approximately 8,000 complex parts expressed as executable CadQuery parametric generators. After multi-stage post-processing and augmentation, we obtain a unified dataset of approximately 1.3 million scripts paired with rendered geometry and exercising the full CadQuery operation set. A VLM fine-tuned on CADEvolve achieves state-of-the-art results on the Image2CAD task across the DeepCAD, Fusion 360, and MCB benchmarks. Code, dataset, and the SOTA model are available at GitHub, Hugging Face dataset, and Hugging Face model.
@article{f2cd7596-daa6-43b0-8212-8a388416dab7,
title={CADEvolve: Creating Realistic CAD via Program Evolution},
author={Maksim Elistratov and Marina Barannikov},
year={2025},
language={en}
}TY - JOUR TI - CADEvolve: Creating Realistic CAD via Program Evolution AU - Maksim Elistratov AU - Marina Barannikov PY - 2025 LA - en ER -
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