Model comparison

GPT-5.6 Sol vs MiniMax-M2

GPT-5.6 Sol is the stronger model overall, scoring 65.0 to 37.4 on the Noometry Index. MiniMax-M2 costs 15× less per token, which makes it the better buy when GPT-5.6 Sol's lead doesn't matter for your workload.

Last verified . 19 shared benchmarks.

GPT-5.6 Sol OpenAI

65.0

Rank #7 Confirmed

MiniMax-M2 MiniMax

37.4

Rank #204 Confirmed

Summary

  • They share 19 benchmarks with published results for both. GPT-5.6 Sol scores higher in 9 categories and MiniMax-M2 in 0 categories; 9 gaps are clear of the uncertainty.
  • The widest gap is in reasoning, where GPT-5.6 Sol leads 74.8 to 19.4.
  • The biggest single-benchmark swing is NYT Connections (extended): 93.8% for GPT-5.6 Sol and 14.8% for MiniMax-M2.
  • MiniMax-M2 is cheaper at $0.30 / $1.20 per million input/output tokens, against $4 / $20 for GPT-5.6 Sol.
  • GPT-5.6 Sol accepts more context: 1.05M tokens versus 205K.
  • MiniMax-M2 has downloadable open weights; the other is API-only.

Side by side

GPT-5.6 Sol and MiniMax-M2 specifications
GPT-5.6 SolMiniMax-M2
ProviderOpenAIMiniMax
Noometry Index65.037.4
Released2026-07-092025-10-27
WeightsProprietaryOpen
Context window1.05M205K
Max output128K131K
Input $ / M tokens$4$0.30
Output $ / M tokens$20$1.20
Results tracked6521

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Category by category

Coding GPT-5.6 Sol leads

GPT-5.6 Sol: 65.1 (#7), MiniMax-M2: 39.3 (#159)

Coding benchmarks
BenchmarkGPT-5.6 SolMiniMax-M2
LMArena WebDev16181297
LMArena Coding14981370
DeepSWE72.7%—
FrontierCode47.5%—
SWE-bench Verified (bash only)—61%
CursorBench41.7%—
FrontierSWE32.2%—
SciCode57.1%—
GSO76.5%—
WeirdML89.4%—
MirrorCode20%—
ALE-Bench2,177—

Agentic & Tool Use GPT-5.6 Sol leads

GPT-5.6 Sol: 50.3 (#7), MiniMax-M2: 25.1 (#109)

Agentic & Tool Use benchmarks
BenchmarkGPT-5.6 SolMiniMax-M2
Vending-Bench 29,619160.6
Terminal-Bench—30%
APEX-Agents51.4%—
OSWorld 2.027.3%—
τ²-bench Banking46.9%—
PostTrainBench36.2%—
BALROG60%—
GBAEval52.6%—
GDP.pdf30.7%—
LMArena Search1257—

Reasoning GPT-5.6 Sol leads

GPT-5.6 Sol: 74.8 (#8), MiniMax-M2: 19.4 (#258)

Reasoning benchmarks
BenchmarkGPT-5.6 SolMiniMax-M2
Kagi LLM Benchmark67%57.8%
NYT Connections (extended)93.8%14.8%
LMArena Hard Prompts14841357
ARC-AGI-292.5%—
SimpleBench71.7%—
ARC-AGI-197.5%—
CritPt32.3%—
Chess Puzzles64%—
EnigmaEval37.1%—
EBR-Bench44.8%—
Mystery Game Puzzles58%—
DTBench96%—
LMCA59.2%—
Surface Evolver Bench93.1%—
Bench to the Future 30.14—
Epoch Capabilities Index161.66—

Math GPT-5.6 Sol leads

GPT-5.6 Sol: 85.6 (#9), MiniMax-M2: 37.3 (#160)

Math benchmarks
BenchmarkGPT-5.6 SolMiniMax-M2
LMArena Math14741352
FrontierMath (Tiers 1-3)89.1%—
FrontierMath Tier 482.9%—
OTIS Mock AIME 2024-2025100%—
ProofBench83%—
FrontierMath Erdős0%—

Knowledge GPT-5.6 Sol leads

GPT-5.6 Sol: 64.3 (#18), MiniMax-M2: 37.0 (#163)

Knowledge benchmarks
BenchmarkGPT-5.6 SolMiniMax-M2
LMArena Expert15161337
GPQA Diamond93.5%—
SimpleQA Verified69.7%—
Vectara Hallucination Rate12.4%—

Multimodal Not comparable

GPT-5.6 Sol: 48.6 (#9), MiniMax-M2: —

Multimodal benchmarks
BenchmarkGPT-5.6 SolMiniMax-M2
LMArena Vision1281—
Blueprint-Bench 233.6%—
Furniture Assembly56.7%—
LMArena Document1483—

Multilingual GPT-5.6 Sol leads

GPT-5.6 Sol: 55.3 (#32), MiniMax-M2: 45.3 (#171)

Multilingual benchmarks
BenchmarkGPT-5.6 SolMiniMax-M2
LMArena Non-English14521313
LMArena Chinese15271366
LMArena French14771335
LMArena German14761355
LMArena Russian14681331
LMArena Spanish14411326
LMArena Japanese1471—
LMArena Korean1442—

Instruction Following GPT-5.6 Sol leads

GPT-5.6 Sol: 77.7 (#16), MiniMax-M2: 70.2 (#166)

Instruction Following benchmarks
BenchmarkGPT-5.6 SolMiniMax-M2
LMArena Instruction Following14821328

Long Context GPT-5.6 Sol leads

GPT-5.6 Sol: 45.4 (#42), MiniMax-M2: 40.5 (#153)

Long Context benchmarks
BenchmarkGPT-5.6 SolMiniMax-M2
LMArena Longer Query14801331

Writing & Preference GPT-5.6 Sol leads

GPT-5.6 Sol: 73.3 (#12), MiniMax-M2: 53.0 (#162)

Writing & Preference benchmarks
BenchmarkGPT-5.6 SolMiniMax-M2
LMArena Text14571340
LMArena Creative Writing14481286
LMArena Multi-Turn14601361
EQ-Bench Creative Writing1972—
EQ-Bench 41250—

Frequently asked questions

Is GPT-5.6 Sol better than MiniMax-M2?

GPT-5.6 Sol is the stronger model overall, scoring 65.0 to 37.4 on the Noometry Index. MiniMax-M2 costs 15× less per token, which makes it the better buy when GPT-5.6 Sol's lead doesn't matter for your workload.

Which is cheaper, GPT-5.6 Sol or MiniMax-M2?

MiniMax-M2 is cheaper. It lists at $0.30 per million input tokens and $1.20 per million output tokens; GPT-5.6 Sol lists at $4 and $20.

Is GPT-5.6 Sol or MiniMax-M2 better for coding?

GPT-5.6 Sol scores higher on coding benchmarks: 65.1 versus 39.3 in the Noometry coding category.

Which has the bigger context window?

GPT-5.6 Sol does, with 1.05M tokens against 205K.

How many benchmarks do GPT-5.6 Sol and MiniMax-M2 share?

19 benchmarks have published results for both models. GPT-5.6 Sol has 65 scored results on Noometry and MiniMax-M2 has 21.

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