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A · open · Other

Atria Dawn Preview

Shanghai AI Lab

B · closed · Other

Step-2

StepFun

2:0

overall capability wins (0 ties across 2 scored). Atria Dawn Preview leads overall.

  • Specs2:0

Verdict

Atria Dawn Preview offers ~16.0x larger context (256K vs 16K); Atria Dawn Preview allows ~8.0x more max output (66K vs 8K); Atria Dawn Preview ships open weights (MIT).

  • Atria Dawn Preview offers ~16.0x larger context (256K vs 16K)
  • Atria Dawn Preview allows ~8.0x more max output (66K vs 8K)
  • Atria Dawn Preview ships open weights (MIT)

Cost for 1M in + 250K out

Illustrative chat workload at primary-provider list prices.

Atria Dawn Preview
-
Step-2
$3

Price per 1M tokens

Full comparison

Organization

Shanghai AI Lab

StepFun

Family

Other

Other

License

MIT

Proprietary

Open weights

Yes

No

Release

Sep 11, 2026

Jan 15, 2025

Knowledge cutoff

-

-

API / provider

No primary API price listed

StepFun

Modalities

text → text

text → text

Specs

Context window

256K

16K

A +240K

Max output

66K

8K

A +57K

Parameters

744B

—

—

Pricing

Input $/1M

—

$1.50

—

Output $/1M

—

$6

—

Blended $/1M (3∶1)

-

$2.63

—

Speed

tok/s

-

50

—

TTFT (s)

-

0.6

—

Reasoning

MMLU-Pro

—

—

—

GPQA Diamond

—

—

—

Humanity's Last Exam

—

—

—

AIME 2025

—

—

—

MATH-500

—

—

—

Humanity's Last Exam (with tools)

—

—

—

AA-Omniscience Accuracy

—

—

—

AA-LCR v1.1

—

—

—

CritPt

—

—

—

MMMU-Pro

—

—

—

IFBench

—

—

—

Chartography

—

—

—

Chartography (With Tools)

—

—

—

Coding

SWE-bench Verified

—

—

—

SWE-bench Pro

59.6

—

—

SWE-bench Multilingual

—

—

—

LiveCodeBench

—

—

—

Terminal-Bench 2.1

—

—

—

Aider Polyglot

—

—

—

Terminal-Bench 3

—

—

—

BigCodeBench

—

—

—

SciCode

—

—

—

CursorBench

—

—

—

SWE-Rebench

—

—

—

NL2Repo-Bench

—

—

—

DeepSWE

—

—

—

WebDev Arena

—

—

—

Terminal-Bench 4.0

—

—

—

CursorBench 4.0

—

—

—

FrontierCode v1.1 (Main)

—

—

—

Arena

LMArena Elo

—

—

—

Atria Dawn Preview

Context
256K / 66K out
Parameters
744B
Price
—
Speed
—
Modalities
text → text
License
MIT

Shanghai AI Laboratory's open-weight agentic MoE (744B total, MIT license, 256K context), built on a GLM-5.2 base and trained by the cross-institutional ATRIA initiative (with Fudan NLP Lab) for long-horizon research and engineering workflows: problem analysis, tool use, code, experiments, and failure recovery. Benchmark scores are from the model's own technical report and have not yet been independently verified by a third-party evaluator.

Step-2

Context
16K / 8K out
Parameters
—
Price
$1.50 / $6
Speed
50 tok/s · 0.6s TTFT
Modalities
text → text
License
Proprietary

StepFun frontier reasoning model that broke into Chinese and global arenas in early 2025.

Benchmark charts

Winner bars are emphasized. Per-benchmark deltas sit above each chart.

These two models have no overlapping published benchmarks in our dataset. Compare specs and pricing instead.

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