Model comparison
DeepSeek-V3.1 vs o3-mini
DeepSeek-V3.1 is the stronger model overall, scoring 42.8 to 36.7 on the Noometry Index.
Last verified . 24 shared benchmarks.
Summary
- They share 24 benchmarks with published results for both. DeepSeek-V3.1 scores higher in 6 categories and o3-mini in 2 categories; 7 gaps are clear of the uncertainty.
- The widest gap is in reasoning, where DeepSeek-V3.1 leads 27.9 to 16.3.
- The biggest single-benchmark swing is SimpleBench: 40% for DeepSeek-V3.1 and 22.8% for o3-mini.
- DeepSeek-V3.1 is cheaper at $0.25 / $0.95 per million input/output tokens, against $1.10 / $4.40 for o3-mini.
- o3-mini accepts more context: 200K tokens versus 164K.
- DeepSeek-V3.1 has downloadable open weights; the other is API-only.
Side by side
| DeepSeek-V3.1 | o3-mini | |
|---|---|---|
| Provider | DeepSeek | OpenAI |
| Noometry Index | 42.8 | 36.7 |
| Released | 2025-08-21 | 2024-12-20 |
| Weights | Open | Proprietary |
| Context window | 164K | 200K |
| Max output | 8K | 100K |
| Input $ / M tokens | $0.25 | $1.10 |
| Output $ / M tokens | $0.95 | $4.40 |
| Results tracked | 27 | 51 |
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Category by category
Coding Too close to call
DeepSeek-V3.1: 40.3 (#144), o3-mini: 40.8 (#132)
| Benchmark | DeepSeek-V3.1 | o3-mini |
|---|---|---|
| WeirdML | 38.4% | 43.7% |
| LMArena Coding | 1417 | 1378 |
| Aider Polyglot | — | 60.4% |
| SciCode | — | 39.8% |
| GSO | — | 1.3% |
| LiveBench Coding | — | 82.7% |
| CadEval | — | 54% |
Agentic & Tool Use Not comparable
DeepSeek-V3.1: —, o3-mini: 29.6 (#84)
| Benchmark | DeepSeek-V3.1 | o3-mini |
|---|---|---|
| Cybench | — | 22.5% |
Reasoning DeepSeek-V3.1 leads
DeepSeek-V3.1: 27.9 (#110), o3-mini: 16.3 (#305)
| Benchmark | DeepSeek-V3.1 | o3-mini |
|---|---|---|
| SimpleBench | 40% | 22.8% |
| LMArena Hard Prompts | 1417 | 1366 |
| DTBench | 82.7% | 68.8% |
| LMCA | 24.3% | 19% |
| Epoch Capabilities Index | 139.92 | 140.34 |
| ForecastBench | 58 | 59.6 |
| ARC-AGI-2 | — | 3% |
| Kagi LLM Benchmark | 53.2% | — |
| ARC-AGI-1 | — | 34.5% |
| CritPt | — | 0.3% |
| Chess Puzzles | — | 17% |
| LiveBench Reasoning | — | 89.6% |
| Mystery Game Puzzles | — | 7% |
| LiveBench Data Analysis | — | 70.6% |
| LiveBench | — | 75.9% |
Math DeepSeek-V3.1 leads
DeepSeek-V3.1: 38.9 (#122), o3-mini: 28.1 (#244)
| Benchmark | DeepSeek-V3.1 | o3-mini |
|---|---|---|
| LMArena Math | 1420 | 1396 |
| FrontierMath (Tiers 1-3) | — | 18.6% |
| FrontierMath Tier 4 | — | 0% |
| OTIS Mock AIME 2024-2025 | — | 76.9% |
| LiveBench Math | — | 77.3% |
| MATH Level 5 | — | 96.5% |
| FrontierMath (Feb 2025 set) | — | 12.4% |
| FrontierMath Tier 4 (v1) | — | 4.2% |
Knowledge DeepSeek-V3.1 leads
DeepSeek-V3.1: 43.7 (#90), o3-mini: 38.3 (#146)
| Benchmark | DeepSeek-V3.1 | o3-mini |
|---|---|---|
| LMArena Expert | 1405 | 1364 |
| GPQA Diamond | — | 77% |
| SimpleQA Verified | — | 15.3% |
| Confabulations | — | 17.9% |
| Vectara Hallucination Rate | 5.5% | — |
Multilingual DeepSeek-V3.1 leads
DeepSeek-V3.1: 51.6 (#106), o3-mini: 45.7 (#164)
| Benchmark | DeepSeek-V3.1 | o3-mini |
|---|---|---|
| LMArena Non-English | 1400 | 1319 |
| LMArena Chinese | 1469 | 1379 |
| LMArena French | 1447 | 1334 |
| LMArena German | 1411 | 1303 |
| LMArena Japanese | 1378 | 1286 |
| LMArena Korean | 1337 | 1314 |
| LMArena Russian | 1405 | 1304 |
| LMArena Spanish | 1431 | 1321 |
Instruction Following o3-mini leads
DeepSeek-V3.1: 73.9 (#110), o3-mini: 75.1 (#72)
| Benchmark | DeepSeek-V3.1 | o3-mini |
|---|---|---|
| LMArena Instruction Following | 1400 | 1337 |
| LiveBench Instruction Following | — | 84.4% |
Long Context DeepSeek-V3.1 leads
DeepSeek-V3.1: 36.3 (#232), o3-mini: 33.8 (#256)
| Benchmark | DeepSeek-V3.1 | o3-mini |
|---|---|---|
| Fiction.LiveBench | 52.8% | 50% |
| LMArena Longer Query | 1422 | 1343 |
Writing & Preference DeepSeek-V3.1 leads
DeepSeek-V3.1: 60.3 (#98), o3-mini: 50.3 (#182)
| Benchmark | DeepSeek-V3.1 | o3-mini |
|---|---|---|
| LMArena Text | 1420 | 1337 |
| LMArena Creative Writing | 1401 | 1286 |
| LMArena Multi-Turn | 1408 | 1320 |
| Short-Story Creative Writing | — | 61.7% |
| EQ-Bench Creative Writing | 1436 | — |
| LiveBench Language | — | 50.7% |
Frequently asked questions
Is DeepSeek-V3.1 better than o3-mini?
DeepSeek-V3.1 is the stronger model overall, scoring 42.8 to 36.7 on the Noometry Index.
Which is cheaper, DeepSeek-V3.1 or o3-mini?
DeepSeek-V3.1 is cheaper. It lists at $0.25 per million input tokens and $0.95 per million output tokens; o3-mini lists at $1.10 and $4.40.
Is DeepSeek-V3.1 or o3-mini better for coding?
They score almost the same on coding (40.3 vs 40.8); test both on your own repository before choosing.
Which has the bigger context window?
o3-mini does, with 200K tokens against 164K.
How many benchmarks do DeepSeek-V3.1 and o3-mini share?
24 benchmarks have published results for both models. DeepSeek-V3.1 has 27 scored results on Noometry and o3-mini has 51.