PACE-Bench / README.md
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---
pretty_name: PACE-Bench
language:
- en
license: mit
size_categories:
- n<1K
task_categories:
- text-generation
tags:
- benchmark
- agents
- agent-evaluation
- self-evolving-agents
- physics
- physical-reasoning
- code
- code-generation
- executable-design
- simulation
- box2d
- dynamic-environments
citation: |
@misc{zhan2026pacebenchbenchmarkingphysicsadaptation,
title={PACE-Bench: Benchmarking Physics Adaptation via Code Evolution in Dynamic Environments},
author={Yuhao Zhan and Bingxiang He and Zecong Tang and Chaojun Xiao},
year={2026},
eprint={2608.14441},
archivePrefix={arXiv},
primaryClass={cs.AI},
url={https://arxiv.org/abs/2608.14441},
}
source_datasets: []
---
> **Task mirror only.** This dataset repository contains the 36 executable task definitions. The CLI, shared runtime, evaluation engine, self-evolving methods, reporting code, and coding-agent sandbox live in the [PACE-Bench GitHub repository](https://github.com/thunlp/PACE-Bench).
<details>
<summary>Mirror provenance</summary>
- Source: [`src/pace_bench/tasks/categories`](https://github.com/thunlp/PACE-Bench/tree/main/src/pace_bench/tasks/categories)
- Included: 36 base tasks and `primitives_api.json`
- Excluded: shared runtime, evaluation methods, generated results, caches, and local artifacts
</details>
# PACE-Bench
Self-evolving agents improve future behavior from interaction experience, yet existing evaluations typically keep execution conditions fixed. **PACE-Bench** tests whether an agent can adapt a previously successful code-driven design after an environment shift causes it to fail.
[![GitHub](https://img.shields.io/badge/GitHub-Code-181717?logo=github)](https://github.com/thunlp/PACE-Bench)
[![License](https://img.shields.io/badge/License-MIT-blue.svg)](https://github.com/thunlp/PACE-Bench/blob/main/LICENSE)
[![Python](https://img.shields.io/badge/Python-3.10-blue.svg)](https://www.python.org/)
[![arXiv](https://img.shields.io/badge/arXiv-2608.14441-b31b1b.svg?logo=arxiv&logoColor=white)](https://arxiv.org/pdf/2608.14441)
## What is PACE-Bench?
PACE-Bench contains **144 source-to-target adaptation pairs across six physics domains**. Each pair keeps the goal and interface fixed:
1. A **code-driven design** succeeds in the source environment.
2. The same design fails in a **mutated target environment**.
3. The agent uses **diagnostic sandbox feedback** to revise the design.
4. The adapted design must succeed under the target physics.
| Benchmark scale | Count |
| --- | ---: |
| Physics domains | 6 |
| Base tasks | 36 |
| Environments per task | 5 |
| Evaluation environments | 180 |
| Source-to-target pairs | 144 |
## What is included here?
| Domain | Prefix | Tasks |
| --- | --- | ---: |
| Statics / Equilibrium | `S` | 6 |
| Kinematics / Linkages | `K` | 6 |
| Dynamics / Energy | `D` | 6 |
| Granular / Fluid Interaction | `F` | 6 |
| Cybernetics / Control | `C` | 6 |
| Exotic Physics | `E` | 6 |
```text
tasks/
├── Category1_Statics_Equilibrium/S_01 ... S_06/
├── Category2_Kinematics_Linkages/K_01 ... K_06/
├── Category3_Dynamics_Energy/D_01 ... D_06/
├── Category4_Granular_FluidInteraction/F_01 ... F_06/
├── Category5_Cybernetics_Control/C_01 ... C_06/
├── Category6_ExoticPhysics/E_01 ... E_06/
└── primitives_api.json
```
Each task package contains:
| File | Role |
| --- | --- |
| `agent.py` | Source and four target reference solutions |
| `environment.py` | Box2D world, primitives, and mutable physics |
| `evaluator.py` | Success criteria, score, constraints, and raw metrics |
| `feedback.py` | Diagnostic feedback derived from measured metrics |
| `prompt.py` | Task description, exposed values, and primitive API |
| `renderer.py` | Evaluation-neutral visualization |
| `stages.py` | Four target mutations and prompt updates |
These are **executable benchmark definitions**, not a conventional row-based dataset. The Dataset Viewer is therefore not the primary interface.
## Download the task mirror
```python
from huggingface_hub import snapshot_download
path = snapshot_download(
repo_id="YuhaoZhan/PACE-Bench",
repo_type="dataset",
allow_patterns=["tasks/**"],
)
print(path)
```
Or clone it directly:
```bash
git clone https://huggingface.co/datasets/YuhaoZhan/PACE-Bench
```
Use this mirror when you need to inspect, archive, or distribute the task definitions without the full evaluation stack.
## Run the benchmark
The Hugging Face mirror is **not standalone**. For evaluation, install the complete GitHub repository with [uv](https://docs.astral.sh/uv/):
```bash
git clone https://github.com/thunlp/PACE-Bench.git
cd PACE-Bench
uv venv .venv --python 3.10
source .venv/bin/activate # Windows: .venv\Scripts\activate
uv pip install -r requirements.txt
pace-bench list --task S_01
pace-bench validate --task S_01
```
The GitHub checkout already contains the same task definitions. You do **not** need to download this mirror separately to run PACE-Bench.
## Intended use
- Evaluate adaptation after controlled physical environment changes
- Study feedback-driven code evolution and self-evolving agents
- Compare context-, memory-, search-, and parameter-based methods
- Analyze physical reasoning, redesign, exploration, and convergence failures
- Inspect or extend executable task definitions
## Scope and limitations
- **Physics:** 2D rigid-body systems in Box2D
- **Language:** English prompts and diagnostic feedback
- **Not covered:** 3D/deformable physics, full fluids, perception, navigation, and multi-agent coordination
- **Execution safety:** run generated code on a dedicated evaluator host without unrelated credentials
- **Version note:** these tasks include an additional difficulty-escalation pass beyond the paper version, so new scores may differ slightly while its conclusions remain unchanged
## Issues and contributions
The Hugging Face repository is a distribution mirror. Please open task issues, fixes, and pull requests in the [GitHub repository](https://github.com/thunlp/PACE-Bench).
## License
PACE-Bench is released under the [MIT License](https://github.com/thunlp/PACE-Bench/blob/main/LICENSE).
## Citation
```bibtex
@misc{zhan2026pacebenchbenchmarkingphysicsadaptation,
title={PACE-Bench: Benchmarking Physics Adaptation via Code Evolution in Dynamic Environments},
author={Yuhao Zhan and Bingxiang He and Zecong Tang and Chaojun Xiao},
year={2026},
eprint={2608.14441},
archivePrefix={arXiv},
primaryClass={cs.AI},
url={https://arxiv.org/abs/2608.14441},
}
```