GuidedBench / README.md
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Initial release of GuidedBench
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---
pretty_name: GuidedBench
license: cc-by-4.0
version: "1.0"
language:
- en
size_categories:
- n<1K
task_categories:
- text-classification
tags:
- llm
- jailbreak
- ai-safety
- evaluation
extra_gated_heading: Access GuidedBench
extra_gated_description: >-
Please tell us briefly how you plan to use GuidedBench. This information is
collected to manage responsible access to a safety evaluation dataset.
extra_gated_button_content: Request access
extra_gated_prompt: >-
GuidedBench contains harmful prompts and is intended for controlled AI
safety evaluation, red teaming, education, and defensive research.
extra_gated_fields:
Affiliation: text
Intended use:
type: select
options:
- Academic research
- Education
- Safety evaluation
- Red teaming
- Other
Country or region: country
I acknowledge the GuidedBench license and harmful content: checkbox
configs:
- config_name: default
data_files:
- split: core
path: core.jsonl
- split: additional
path: additional.jsonl
---
# GuidedBench
GuidedBench is a guideline-grounded benchmark for evaluating LLM jailbreak
methods. Each question is paired with verified, case-specific entity and
action guidelines describing the content a successful response should
contain.
## Dataset structure
- `core`: 180 cases from 15 topics that were consistently refused by the
victim-model families studied in the paper.
- `additional`: 20 cases from five policy-dependent topics, reported
separately because vendor policies and baseline refusal behavior differ.
Each record contains:
- `id`: stable identifier such as `guidedbench-000`;
- `index`: original integer index;
- `benchmark_version`: data version;
- `subset`: `core` or `additional`;
- `topic`: harmful-topic category;
- `question`: benchmark question;
- `guidelines`: case-specific scoring points, each with an id, type,
description, and examples;
- `target`: affirmative target prefix retained from the original release.
## Loading
```python
from datasets import load_dataset
dataset = load_dataset("HRXUST/GuidedBench")
print(dataset["core"][0])
```
The official evaluator and additional provider backends are available from
the [GuidedBench repository](https://github.com/SproutNan/GuidedBench).
## Safety
The dataset contains harmful objectives and examples. It is intended solely
for controlled AI-safety evaluation, red teaming, and defensive research.
## License
GuidedBench is licensed under [CC BY 4.0](https://creativecommons.org/licenses/by/4.0/).
When sharing or adapting the dataset, credit the GuidedBench authors, link to
the license, and indicate whether changes were made. See `LICENSE` for details.
## Citation
```bibtex
@inproceedings{huang2026guidedbench,
title = {{GuidedBench}: Measuring and Mitigating the Evaluation Discrepancies of In-the-wild {LLM} Jailbreak Methods},
author = {Ruixuan Huang and Xunguang Wang and Zongjie Li and Daoyuan Wu and Shuai Wang},
booktitle = {International Conference on Learning Representations},
year = {2026},
url = {https://openreview.net/forum?id=ZVg8y3ibyM}
}
```