Model comparison

Devstral Small 2505 vs GPT-5.6 Terra

GPT-5.6 Terra is the stronger model overall, scoring 59.2 to 34.3 on the Noometry Index. Devstral Small 2505 costs 30× less per token, which makes it the better buy when GPT-5.6 Terra's lead doesn't matter for your workload.

Last verified . 3 shared benchmarks.

Devstral Small 2505 Mistral AI

34.3

Rank #233 Reported

GPT-5.6 Terra OpenAI

59.2

Rank #17 Confirmed

Summary

  • They share 3 benchmarks with published results for both. Devstral Small 2505 scores higher in 0 categories and GPT-5.6 Terra in 2 categories; 2 gaps are clear of the uncertainty.
  • The widest gap is in reasoning, where GPT-5.6 Terra leads 60.7 to 19.7.
  • The biggest single-benchmark swing is CritPt: 0% for Devstral Small 2505 and 30% for GPT-5.6 Terra.
  • Devstral Small 2505 is cheaper at $0.10 / $0.30 per million input/output tokens, against $2 / $12 for GPT-5.6 Terra.
  • GPT-5.6 Terra accepts more context: 1.05M tokens versus 128K.
  • Devstral Small 2505 has downloadable open weights; the other is API-only.

Side by side

Devstral Small 2505 and GPT-5.6 Terra specifications
Devstral Small 2505GPT-5.6 Terra
ProviderMistral AIOpenAI
Noometry Index34.359.2
Released2025-05-072026-07-09
WeightsOpenProprietary
Context window128K1.05M
Max output128K128K
Input $ / M tokens$0.10$2
Output $ / M tokens$0.30$12
Results tracked452

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Category by category

Coding GPT-5.6 Terra leads

Devstral Small 2505: 38.9 (#166), GPT-5.6 Terra: 57.7 (#19)

Coding benchmarks
BenchmarkDevstral Small 2505GPT-5.6 Terra
SciCode28.8%55%
DeepSWE—69.6%
FrontierCode—41.3%
SWE-bench Verified (bash only)56.4%—
CursorBench—41.3%
LMArena WebDev—1522
WeirdML—78.3%
LMArena Coding—1484
ALE-Bench—1,951

Agentic & Tool Use Not comparable

Devstral Small 2505: —, GPT-5.6 Terra: 40.1 (#25)

Agentic & Tool Use benchmarks
BenchmarkDevstral Small 2505GPT-5.6 Terra
APEX-Agents—58.2%
BALROG—53.2%
GDP.pdf—24.7%
Vending-Bench 2—7,343

Reasoning GPT-5.6 Terra leads

Devstral Small 2505: 19.7 (#252), GPT-5.6 Terra: 60.7 (#21)

Reasoning benchmarks
BenchmarkDevstral Small 2505GPT-5.6 Terra
Kagi LLM Benchmark37.7%51.3%
CritPt0%30%
ARC-AGI-2—83.9%
SimpleBench—48.9%
NYT Connections (extended)—78.4%
ARC-AGI-1—96.5%
Chess Puzzles—54%
LMArena Hard Prompts—1468
Mystery Game Puzzles—35%
DTBench—93.3%
LMCA—55%
Surface Evolver Bench—83.8%
Epoch Capabilities Index—159.62

Math Not comparable

Devstral Small 2505: —, GPT-5.6 Terra: 81.6 (#12)

Math benchmarks
BenchmarkDevstral Small 2505GPT-5.6 Terra
FrontierMath (Tiers 1-3)—86%
FrontierMath Tier 4—70.7%
OTIS Mock AIME 2024-2025—99.7%
ProofBench—74%
LMArena Math—1466

Knowledge Not comparable

Devstral Small 2505: —, GPT-5.6 Terra: 61.2 (#30)

Knowledge benchmarks
BenchmarkDevstral Small 2505GPT-5.6 Terra
GPQA Diamond—93.3%
SimpleQA Verified—43.2%
LMArena Expert—1492

Multimodal Not comparable

Devstral Small 2505: —, GPT-5.6 Terra: 47.3 (#11)

Multimodal benchmarks
BenchmarkDevstral Small 2505GPT-5.6 Terra
LMArena Vision—1271
Blueprint-Bench 2—30.8%
Furniture Assembly—54.2%
LMArena Document—1472

Multilingual Not comparable

Devstral Small 2505: —, GPT-5.6 Terra: 54.4 (#44)

Multilingual benchmarks
BenchmarkDevstral Small 2505GPT-5.6 Terra
LMArena Non-English—1439
LMArena Chinese—1513
LMArena French—1471
LMArena German—1460
LMArena Japanese—1457
LMArena Korean—1425
LMArena Russian—1450
LMArena Spanish—1448

Instruction Following Not comparable

Devstral Small 2505: —, GPT-5.6 Terra: 76.4 (#40)

Instruction Following benchmarks
BenchmarkDevstral Small 2505GPT-5.6 Terra
LMArena Instruction Following—1454

Long Context Not comparable

Devstral Small 2505: —, GPT-5.6 Terra: 44.4 (#68)

Long Context benchmarks
BenchmarkDevstral Small 2505GPT-5.6 Terra
LMArena Longer Query—1451

Writing & Preference Not comparable

Devstral Small 2505: —, GPT-5.6 Terra: 70.2 (#23)

Writing & Preference benchmarks
BenchmarkDevstral Small 2505GPT-5.6 Terra
LMArena Text—1447
LMArena Creative Writing—1410
EQ-Bench Creative Writing—1855
EQ-Bench 4—1234
LMArena Multi-Turn—1449

Frequently asked questions

Is Devstral Small 2505 better than GPT-5.6 Terra?

GPT-5.6 Terra is the stronger model overall, scoring 59.2 to 34.3 on the Noometry Index. Devstral Small 2505 costs 30× less per token, which makes it the better buy when GPT-5.6 Terra's lead doesn't matter for your workload.

Which is cheaper, Devstral Small 2505 or GPT-5.6 Terra?

Devstral Small 2505 is cheaper. It lists at $0.10 per million input tokens and $0.30 per million output tokens; GPT-5.6 Terra lists at $2 and $12.

Is Devstral Small 2505 or GPT-5.6 Terra better for coding?

GPT-5.6 Terra scores higher on coding benchmarks: 57.7 versus 38.9 in the Noometry coding category.

Which has the bigger context window?

GPT-5.6 Terra does, with 1.05M tokens against 128K.

How many benchmarks do Devstral Small 2505 and GPT-5.6 Terra share?

3 benchmarks have published results for both models. Devstral Small 2505 has 4 scored results on Noometry and GPT-5.6 Terra has 52.

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