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Text-to-3D Comprehensive Benchmark (T23D-CompBench) 🎥📊

Code · Project Page · Paper Link· Paper PDF · Prompt list

Welcome to the T23D-CompBench dataset! This repository contains around 3,600 textured meshes generated by various models using the Prompt list. These textured meshes have been annotated from twelve evaluation dimensions, including Object Alignment, Attribute Alignment, Interaction Alignment, Overall Alignment, Texture Clarity, Texture Aesthetics, Geometry Loss, Geometry Redundancy, Geometry Roughness, Overall Visual Quality, 3D Authentic, and Overall Quality.

Dataset Details 📚

Acknowledgements and Citation 🙏

This dataset is based on the text-to-3D generative framework, which utilizes various open-source repositories for textured mesh generation evaluation. If you find this dataset helpful, please consider citing the original work:

@article{cui2026rank2score,
author = {Cui, Bingyang and Zhang, Yujie and Yang, Qi and Li, Zhu and Xu, Yiling},
journal = {International Journal of Computer Vision (IJCV)},
title = {Towards Fine-Grained Text-to-3D Quality Assessment: A Benchmark and A Two-Stage Rank-Learning Metric},
year = {2026}
}
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Paper for ccccby/T23D-CompBench