Model comparison

GPT-5 vs Qwen2.5-VL 72B Instruct

GPT-5 is the stronger model overall, scoring 50.9 to 29.9 on the Noometry Index.

Last verified . 3 shared benchmarks.

GPT-5 OpenAI

50.9

Rank #45 Confirmed

Summary

  • They share 3 benchmarks with published results for both. GPT-5 scores higher in 3 categories and Qwen2.5-VL 72B Instruct in 0 categories; 3 gaps are clear of the uncertainty.
  • The widest gap is in reasoning, where GPT-5 leads 38.3 to 20.7.
  • The biggest single-benchmark swing is Kagi LLM Benchmark: 72.7% for GPT-5 and 36% for Qwen2.5-VL 72B Instruct.
  • GPT-5 is cheaper at $1.25 / $10 per million input/output tokens, against $2.80 / $8.40 for Qwen2.5-VL 72B Instruct.
  • GPT-5 accepts more context: 400K tokens versus 131K.
  • Qwen2.5-VL 72B Instruct has downloadable open weights; the other is API-only.

Side by side

GPT-5 and Qwen2.5-VL 72B Instruct specifications
GPT-5Qwen2.5-VL 72B Instruct
ProviderOpenAIAlibaba (Qwen)
Noometry Index50.929.9
Released2025-08-072024-09
WeightsProprietaryOpen
Context window400K131K
Max output128K8K
Input $ / M tokens$1.25$2.80
Output $ / M tokens$10$8.40
Results tracked696

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Category by category

Coding Not comparable

GPT-5: 50.3 (#47), Qwen2.5-VL 72B Instruct: —

Coding benchmarks
BenchmarkGPT-5Qwen2.5-VL 72B Instruct
SWE-bench Verified73.6%—
SWE-bench Verified (bash only)65%—
Aider Polyglot88%—
LMArena WebDev1418—
SciCode42.9%—
GSO6.9%—
WeirdML60.7%—
LMArena Coding1436—
ALE-Bench1,162—
AlgoTune1.67—

Agentic & Tool Use GPT-5 leads

GPT-5: 33.1 (#56), Qwen2.5-VL 72B Instruct: 18.6 (#144)

Agentic & Tool Use benchmarks
BenchmarkGPT-5Qwen2.5-VL 72B Instruct
Terminal-Bench49.6%—
GDPval34.8%—
Remote Labor Index1.7%—
DeepResearch Bench49.6%—
OSWorld—5%
BALROG32.8%—
LMArena Search1133—
METR Time Horizons69.6%—

Reasoning GPT-5 leads

GPT-5: 38.3 (#64), Qwen2.5-VL 72B Instruct: 20.7 (#233)

Reasoning benchmarks
BenchmarkGPT-5Qwen2.5-VL 72B Instruct
Kagi LLM Benchmark72.7%36%
ARC-AGI-29.9%—
SimpleBench56.7%—
ARC-AGI-165.7%—
CritPt12.6%—
Chess Puzzles37%—
EnigmaEval10.5%—
EBR-Bench12.7%—
LMArena Hard Prompts1416—
Mystery Game Puzzles23%—
DTBench90.7%—
LMCA40%—
Epoch Capabilities Index150—
ForecastBench61.4—

Math Not comparable

GPT-5: 55.0 (#44), Qwen2.5-VL 72B Instruct: —

Math benchmarks
BenchmarkGPT-5Qwen2.5-VL 72B Instruct
FrontierMath (Tiers 1-3)55.4%—
FrontierMath Tier 422%—
OTIS Mock AIME 2024-202591.4%—
ProofBench18%—
Omni-MATH64.7%—
LMArena Math1407—
MATH Level 598.1%—
FrontierMath (Feb 2025 set)32.4%—
FrontierMath Tier 4 (v1)12.5%—

Knowledge Not comparable

GPT-5: 56.6 (#43), Qwen2.5-VL 72B Instruct: —

Knowledge benchmarks
BenchmarkGPT-5Qwen2.5-VL 72B Instruct
GPQA Diamond86.2%—
Humanity's Last Exam25.3%—
SimpleQA Verified50.1%—
MMLU-Pro86.3%—
Confabulations10.3%—
Vectara Hallucination Rate14.7%—
GPQA (HELM)79.2%—
LMArena Expert1419—

Multimodal GPT-5 leads

GPT-5: 46.8 (#13), Qwen2.5-VL 72B Instruct: 33.5 (#97)

Multimodal benchmarks
BenchmarkGPT-5Qwen2.5-VL 72B Instruct
LMArena Vision12321107
GeoBench81%62%
Video-MME—73.5%
VPCT66%—
SpatialViz-Bench—33.3%

Multilingual Not comparable

GPT-5: 51.4 (#110), Qwen2.5-VL 72B Instruct: —

Multilingual benchmarks
BenchmarkGPT-5Qwen2.5-VL 72B Instruct
LMArena Non-English1397—
LMArena Chinese1422—
LMArena French1410—
LMArena German1416—
LMArena Japanese1409—
LMArena Korean1360—
LMArena Russian1406—
LMArena Spanish1399—

Instruction Following Not comparable

GPT-5: 73.8 (#113), Qwen2.5-VL 72B Instruct: —

Instruction Following benchmarks
BenchmarkGPT-5Qwen2.5-VL 72B Instruct
IFEval87.5%—
LMArena Instruction Following1388—

Long Context Not comparable

GPT-5: 69.5 (#2), Qwen2.5-VL 72B Instruct: —

Long Context benchmarks
BenchmarkGPT-5Qwen2.5-VL 72B Instruct
Fiction.LiveBench97.2%—
LMArena Longer Query1399—

Writing & Preference Not comparable

GPT-5: 63.4 (#65), Qwen2.5-VL 72B Instruct: —

Writing & Preference benchmarks
BenchmarkGPT-5Qwen2.5-VL 72B Instruct
LMArena Text1406—
LMArena Creative Writing1365—
Short-Story Creative Writing86%—
EQ-Bench Creative Writing1627—
WildBench85.7%—
LMArena Multi-Turn1426—

Frequently asked questions

Is GPT-5 better than Qwen2.5-VL 72B Instruct?

GPT-5 is the stronger model overall, scoring 50.9 to 29.9 on the Noometry Index.

Which is cheaper, GPT-5 or Qwen2.5-VL 72B Instruct?

GPT-5 is cheaper. It lists at $1.25 per million input tokens and $10 per million output tokens; Qwen2.5-VL 72B Instruct lists at $2.80 and $8.40.

Which has the bigger context window?

GPT-5 does, with 400K tokens against 131K.

How many benchmarks do GPT-5 and Qwen2.5-VL 72B Instruct share?

3 benchmarks have published results for both models. GPT-5 has 69 scored results on Noometry and Qwen2.5-VL 72B Instruct has 6.

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