Step-Audio-R1
✨ Demo Page | 🎮 Playground | 🌟 GitHub | 📑 Paper
Step-Audio-R1 is the first audio language model to successfully unlock Chain-of-Thought (CoT) reasoning. It decisively solves the "inverted scaling" problem that plagues existing models, where performance degrades with longer reasoning. Step-Audio-R1 is the first model to demonstrate that for audio, like text and vision, allocating more compute at test-time predictably improves performance.
We found the root cause of this anomaly: models were engaging in textual surrogate reasoning (analyzing transcripts, not audio) due to a modality mismatch. To solve this, we introduce Modality-Grounded Reasoning Distillation (MGRD), an iterative training framework that shifts the model's reasoning from textual abstractions to acoustic properties.
This new approach allows us to create Step-Audio-R1, which:
- Is the first audio reasoning model that successfully benefits from test-time compute scaling.
- Surpasses Gemini 2.5 Pro and is comparable to Gemini 3 across major audio reasoning tasks.
- Transforms extended deliberation from a liability into a powerful asset for audio intelligence.
Features
Chain-of-Thought (CoT) Reasoning
- First audio language model to successfully unlock Chain-of-Thought reasoning capabilities.
- Generates audio-relevant reasoning chains that genuinely ground themselves in acoustic features.
Modality-Grounded Reasoning Distillation (MGRD)
- Innovative iterative training framework that shifts reasoning from textual abstractions to acoustic properties.
- Solves the modality mismatch problem that caused textual surrogate reasoning in previous models.
Superior Performance
- Surpasses Gemini 2.5 Pro across comprehensive audio understanding and reasoning benchmarks.
- Comparable to Gemini 3 across major audio reasoning tasks.
- Surpasses Qwen3 in textual reasoning.
- Covers speech, environmental sounds, and music domains.
For more examples, see demo page.
Model Usage
📜 Requirements
- GPU: NVIDIA GPUs with CUDA support (tested on 4×L40S/H100/H800/H20).
- Operating System: Linux.
- Python: >= 3.10.0.
⬇️ Download Model
First, you need to download the Step-Audio-R1 model weights.
Method A · Git LFS
git lfs install
git clone https://huggingface.co/stepfun-ai/Step-Audio-R1
Method B · Hugging Face CLI
hf download stepfun-ai/Step-Audio-R1 --local-dir ./Step-Audio-R1
🚀 Deployment and Execution
We provide two ways to serve the model: Docker (recommended) or compiling the customized vLLM backend.
🐳 Method 1 · Run with Docker (Recommended)
A customized vLLM image is required.
- Pull the image:
docker pull stepfun2025/vllm:step-audio-2-v20250909
Start the service: Assuming the model is downloaded in the
Step-Audio-R1folder in the current directory.docker run --rm -ti --gpus all \ -v $(pwd)/Step-Audio-R1:/Step-Audio-R1 \ -p 9999:9999 \ stepfun2025/vllm:step-audio-2-v20250909 \ -- vllm serve /Step-Audio-R1 \ --served-model-name Step-Audio-R1 \ --port 9999 \ --max-model-len 16384 \ --max-num-seqs 32 \ --tensor-parallel-size 4 \ --chat-template '{%- macro render_content(content) -%}{%- if content is string -%}{{- content.replace("<audio_patch>\n", "<audio_patch>") -}}{%- elif content is mapping -%}{{- content['"'"'value'"'"'] if '"'"'value'"'"' in content else content['"'"'text'"'"'] -}}{%- elif content is iterable -%}{%- for item in content -%}{%- if item.type == '"'"'text'"'"' -%}{{- item['"'"'value'"'"'] if '"'"'value'"'"' in item else item['"'"'text'"'"'] -}}{%- elif item.type == '"'"'audio'"'"' -%}<audio_patch>{%- endif -%}{%- endfor -%}{%- endif -%}{%- endmacro -%}{%- if tools -%}{{- '"'"'<|BOT|>system\n'"'"' -}}{%- if messages[0]['"'"'role'"'"'] == '"'"'system'"'"' -%}{{- render_content(messages[0]['"'"'content'"'"']) + '"'"'<|EOT|>'"'"' -}}{%- endif -%}{{- '"'"'<|BOT|>tool_json_schemas\n'"'"' + tools|tojson + '"'"'<|EOT|>'"'"' -}}{%- else -%}{%- if messages[0]['"'"'role'"'"'] == '"'"'system'"'"' -%}{{- '"'"'<|BOT|>system\n'"'"' + render_content(messages[0]['"'"'content'"'"']) + '"'"'<|EOT|>'"'"' -}}{%- endif -%}{%- endif -%}{%- for message in messages -%}{%- if message["role"] == "user" -%}{{- '"'"'<|BOT|>human\n'"'"' + render_content(message["content"]) + '"'"'<|EOT|>'"'"' -}}{%- elif message["role"] == "assistant" -%}{{- '"'"'<|BOT|>assistant\n'"'"' + (render_content(message["content"]) if message["content"] else '"'"''"'"') -}}{%- set is_last_assistant = true -%}{%- for m in messages[loop.index:] -%}{%- if m["role"] == "assistant" -%}{%- set is_last_assistant = false -%}{%- endif -%}{%- endfor -%}{%- if not is_last_assistant -%}{{- '"'"'<|EOT|>'"'"' -}}{%- endif -%}{%- elif message["role"] == "function_output" -%}{%- else -%}{%- if not (loop.first and message["role"] == "system") -%}{{- '"'"'<|BOT|>'"'"' + message["role"] + '"'"'\n'"'"' + render_content(message["content"]) + '"'"'<|EOT|>'"'"' -}}{%- endif -%}{%- endif -%}{%- endfor -%}{%- if add_generation_prompt -%}{{- '"'"'<|BOT|>assistant\n<think>\n'"'"' -}}{%- endif -%}' \ --enable-log-requests \ --interleave-mm-strings \ --trust-remote-code
After the service starts, it will listen on localhost:9999.
🐳 Method 2 · Run from Source (Compile vLLM)
Step-Audio-R1 requires a customized vLLM backend.
Download Source Code:
git clone https://github.com/stepfun-ai/vllm.git cd vllmPrepare Environment:
python3 -m venv .venv source .venv/bin/activateInstall and Compile: vLLM contains both C++ and Python code. We mainly modified the Python code, so the C++ part can use the pre-compiled version to speed up the process.
# Use pre-compiled C++ extensions (Recommended) VLLM_USE_PRECOMPILED=1 pip install -e .Switch Branch: After compilation, switch to the branch that supports Step-Audio.
git checkout step-audio-2-miniStart the Service:
# Ensure you are in the vllm directory and the virtual environment is activated source .venv/bin/activate python3 -m vllm.entrypoints.openai.api_server \ --model ../Step-Audio-R1 \ --served-model-name Step-Audio-R1 \ --port 9999 \ --host 0.0.0.0 \ --max-model-len 65536 \ --max-num-seqs 128 \ --tensor-parallel-size 4 \ --gpu-memory-utilization 0.85 \ --trust-remote-code \ --enable-log-requests \ --interleave-mm-strings \ --chat-template '{%- macro render_content(content) -%}{%- if content is string -%}{{- content.replace("<audio_patch>\n", "<audio_patch>") -}}{%- elif content is mapping -%}{{- content['"'"'value'"'"'] if '"'"'value'"'"' in content else content['"'"'text'"'"'] -}}{%- elif content is iterable -%}{%- for item in content -%}{%- if item.type == '"'"'text'"'"' -%}{{- item['"'"'value'"'"'] if '"'"'value'"'"' in item else item['"'"'text'"'"'] -}}{%- elif item.type == '"'"'audio'"'"' -%}<audio_patch>{%- endif -%}{%- endfor -%}{%- endif -%}{%- endmacro -%}{%- if tools -%}{{- '"'"'<|BOT|>system\n'"'"' -}}{%- if messages[0]['"'"'role'"'"'] == '"'"'system'"'"' -%}{{- render_content(messages[0]['"'"'content'"'"']) + '"'"'<|EOT|>'"'"' -}}{%- endif -%}{{- '"'"'<|BOT|>tool_json_schemas\n'"'"' + tools|tojson + '"'"'<|EOT|>'"'"' -}}{%- else -%}{%- if messages[0]['"'"'role'"'"'] == '"'"'system'"'"' -%}{{- '"'"'<|BOT|>system\n'"'"' + render_content(messages[0]['"'"'content'"'"']) + '"'"'<|EOT|>'"'"' -}}{%- endif -%}{%- endif -%}{%- for message in messages -%}{%- if message["role"] == "user" -%}{{- '"'"'<|BOT|>human\n'"'"' + render_content(message["content"]) + '"'"'<|EOT|>'"'"' -}}{%- elif message["role"] == "assistant" -%}{{- '"'"'<|BOT|>assistant\n'"'"' + (render_content(message["content"]) if message["content"] else '"'"''"'"') -}}{%- set is_last_assistant = true -%}{%- for m in messages[loop.index:] -%}{%- if m["role"] == "assistant" -%}{%- set is_last_assistant = false -%}{%- endif -%}{%- endfor -%}{%- if not is_last_assistant -%}{{- '"'"'<|EOT|>'"'"' -}}{%- endif -%}{%- elif message["role"] == "function_output" -%}{%- else -%}{%- if not (loop.first and message["role"] == "system") -%}{{- '"'"'<|BOT|>'"'"' + message["role"] + '"'"'\n'"'"' + render_content(message["content"]) + '"'"'<|EOT|>'"'"' -}}{%- endif -%}{%- endif -%}{%- endfor -%}{%- if add_generation_prompt -%}{{- '"'"'<|BOT|>assistant\n<think>\n'"'"' -}}{%- endif -%}'
After the service starts, it will listen on localhost:9999.
🧪 Client Examples
Get the example code and run it:
# Clone the repository containing example scripts
git clone https://github.com/stepfun-ai/Step-Audio-R1.git r1-scripts
# Run the example
cd r1-scripts
python examples-vllm_r1.py
Citation
@article{tian2025step,
title={Step-Audio-R1 Technical Report},
author={Tian, Fei and Zhang, Xiangyu Tony and Zhang, Yuxin and Zhang, Haoyang and Li, Yuxin and Liu, Daijiao and Deng, Yayue and Wu, Donghang and Chen, Jun and Zhao, Liang and others},
journal={arXiv preprint arXiv:2511.15848},
year={2025}
}
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