JetLM / SDAR-30B-A3B-Sci

huggingface.co
Total runs: 43
24-hour runs: 0
7-day runs: -1
30-day runs: 25
Model's Last Updated: October 21 2025
text-generation

Introduction of SDAR-30B-A3B-Sci

Model Details of SDAR-30B-A3B-Sci

SDAR

Introduction

SDAR ( S ynergy of D iffusion and A uto R egression) model is a new large language model that integrates autoregressive (AR) and discrete diffusion modeling strategies. It combines the efficient training paradigm of AR models with the highly parallel inference capability of diffusion models, while delivering performance fully on par with SOTA open-source AR models. At the same time, SDAR sets a new benchmark as the most powerful diffusion language model to date. We highlight three major conclusions from our study:

Take-home message

  • Balanced Efficiency: SDAR unifies the efficient training of AR models with the parallel inference of diffusion, achieving both fast training and inference.
  • Fair Comparisons: In rigorously controlled experiments, SDAR achieves on-par general task performance with strong AR baselines, ensuring credibility and reproducibility.
  • Superior Learning Efficiency: On complex scientific reasoning tasks (e.g., GPQA, ChemBench, Physics), SDAR shows clear gains over AR models of the same scale, approaching or even exceeding leading closed-source systems.

Performance

SDAR v.s. Qwen

For SDAR models, inference hyperparameters are set to: block_length = 4 , denoising_steps = 4 , greedy decoding.

For Qwen3-1.7B-AR-SFT and Qwen3-30B-AR-SFT , we use greedy decoding , and the base models Qwen3-1.7B-Base and Qwen3-30B-Base are derived from the Qwen3 Technical Report .

SDAR-Sci v.s. AR Baseline

This table presents a controlled comparison between AR and SDAR under the same backbone and dataset settings. The results are averaged over 8 runs for GPQA, and over 32 runs each for AIME 2024, AIME 2025, and LiveMathBench.

SDAR-Sci v.s. Other Models

This table positions SDAR-30B-A3B-Sci(sample) against leading open-source and closed-source LLMs. Scores for external models are sourced from the InternLM/Intern-S1 repository.

Runs of JetLM SDAR-30B-A3B-Sci on huggingface.co

43
Total runs
0
24-hour runs
0
3-day runs
-1
7-day runs
25
30-day runs

More Information About SDAR-30B-A3B-Sci huggingface.co Model

More SDAR-30B-A3B-Sci license Visit here:

https://choosealicense.com/licenses/apache-2.0

SDAR-30B-A3B-Sci huggingface.co

SDAR-30B-A3B-Sci huggingface.co is an AI model on huggingface.co that provides SDAR-30B-A3B-Sci's model effect (), which can be used instantly with this JetLM SDAR-30B-A3B-Sci model. huggingface.co supports a free trial of the SDAR-30B-A3B-Sci model, and also provides paid use of the SDAR-30B-A3B-Sci. Support call SDAR-30B-A3B-Sci model through api, including Node.js, Python, http.

SDAR-30B-A3B-Sci huggingface.co Url

https://huggingface.co/JetLM/SDAR-30B-A3B-Sci

JetLM SDAR-30B-A3B-Sci online free

SDAR-30B-A3B-Sci huggingface.co is an online trial and call api platform, which integrates SDAR-30B-A3B-Sci's modeling effects, including api services, and provides a free online trial of SDAR-30B-A3B-Sci, you can try SDAR-30B-A3B-Sci online for free by clicking the link below.

JetLM SDAR-30B-A3B-Sci online free url in huggingface.co:

https://huggingface.co/JetLM/SDAR-30B-A3B-Sci

SDAR-30B-A3B-Sci install

SDAR-30B-A3B-Sci is an open source model from GitHub that offers a free installation service, and any user can find SDAR-30B-A3B-Sci on GitHub to install. At the same time, huggingface.co provides the effect of SDAR-30B-A3B-Sci install, users can directly use SDAR-30B-A3B-Sci installed effect in huggingface.co for debugging and trial. It also supports api for free installation.

SDAR-30B-A3B-Sci install url in huggingface.co:

https://huggingface.co/JetLM/SDAR-30B-A3B-Sci

Url of SDAR-30B-A3B-Sci

SDAR-30B-A3B-Sci huggingface.co Url

Provider of SDAR-30B-A3B-Sci huggingface.co

JetLM
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