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---
language:
- en
license: apache-2.0
size_categories:
- 1K<n<10K
task_categories:
- question-answering
- visual-question-answering
pretty_name: Image2Structure - Latex
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tags:
- biology
- finance
- economics
- math
- physics
- computer_science
- electronics
- statistics
---
# Image2Struct - Latex
[Paper](TODO) | [Website](https://crfm.stanford.edu/helm/image2structure/latest/) | Datasets ([Webpages](https://huggingface.co/datasets/stanford-crfm/i2s-webpage), [Latex](https://huggingface.co/datasets/stanford-crfm/i2s-latex), [Music sheets](https://huggingface.co/datasets/stanford-crfm/i2s-musicsheet)) | [Leaderboard](https://crfm.stanford.edu/helm/image2structure/latest/#/leaderboard) | [HELM repo](https://github.com/stanford-crfm/helm) | [Image2Struct repo](https://github.com/stanford-crfm/image2structure)
**License:** [Apache License](http://www.apache.org/licenses/) Version 2.0, January 2004
## Dataset description
Image2struct is a benchmark for evaluating vision-language models in practical tasks of extracting structured information from images.
This subdataset focuses on LaTeX code. The model is given an image of the expected output with the prompt:
```Please provide the LaTex code used to generate this image. Only generate the code relevant to what you see. Your code will be surrounded by all the imports necessary as well as the begin and end document delimiters.```
The subjects were collected on ArXiv and are: eess, cs, stat, math, physics, econ, q-bio, q-fin.
The dataset is divided into 5 categories. There are 4 categories that are collected automatically using the [Image2Struct repo](https://github.com/stanford-crfm/image2structure):
* equations
* tables
* algorithms
* code
The last category: **wild**, was collected by taking screenshots of equations in the Wikipedia page of "equation" and its related pages.
## Uses
To load the subset `equation` of the dataset to be sent to the model under evaluation in Python:
```python
import datasets
datasets.load_dataset("stanford-crfm/i2s-latex", "equation", split="validation")
```
To evaluate a model on Image2Latex (equation) using [HELM](https://github.com/stanford-crfm/helm/), run the following command-line commands:
```sh
pip install crfm-helm
helm-run --run-entries image2latex:subset=equation,model=vlm --models-to-run google/gemini-pro-vision --suite my-suite-i2s --max-eval-instances 10
```
You can also run the evaluation for only a specific `subset` and `difficulty`:
```sh
helm-run --run-entries image2latex:subset=equation,difficulty=hard,model=vlm --models-to-run google/gemini-pro-vision --suite my-suite-i2s --max-eval-instances 10
```
For more information on running Image2Struct using [HELM](https://github.com/stanford-crfm/helm/), refer to the [HELM documentation](https://crfm-helm.readthedocs.io/) and the article on [reproducing leaderboards](https://crfm-helm.readthedocs.io/en/latest/reproducing_leaderboards/).
## Citation
**BibTeX:**
```tex
@misc{roberts2024image2struct,
title={Image2Struct: A Benchmark for Evaluating Vision-Language Models in Extracting Structured Information from Images},
author={Josselin Somerville Roberts and Tony Lee and Chi Heem Wong and Michihiro Yasunaga and Yifan Mai and Percy Liang},
year={2024},
eprint={TBD},
archivePrefix={arXiv},
primaryClass={TBD}
}
```