Model comparison

DeepSeek-R1 vs Qwen-14B

DeepSeek-R1 is the stronger model overall, scoring 42.3 to 31.4 on the Noometry Index.

Last verified . 11 shared benchmarks.

DeepSeek-R1 DeepSeek

42.3

Rank #115 Confirmed

Qwen-14B Alibaba (Qwen)

31.4

Rank #275 Confirmed

Summary

  • They share 11 benchmarks with published results for both. DeepSeek-R1 scores higher in 6 categories and Qwen-14B in 1 category; 6 gaps are clear of the uncertainty.
  • The widest gap is in writing & preference, where DeepSeek-R1 leads 61.4 to 27.6.
  • Qwen-14B has downloadable open weights; the other is API-only.

Side by side

DeepSeek-R1 and Qwen-14B specifications
DeepSeek-R1Qwen-14B
ProviderDeepSeekAlibaba (Qwen)
Noometry Index42.331.4
Released2025-01-202023-09-24
WeightsProprietaryOpen
Context window164K—
Max output64K—
Input $ / M tokens$0.50—
Output $ / M tokens$2.15—
Results tracked5218

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Category by category

Coding DeepSeek-R1 leads

DeepSeek-R1: 46.3 (#68), Qwen-14B: 31.2 (#288)

Coding benchmarks
BenchmarkDeepSeek-R1Qwen-14B
LMArena Coding14271071
Aider Polyglot71.4%—
SciCode35.7%—
WeirdML41.6%—
LiveBench Coding66.7%—
ALE-Bench804.12—
AlgoTune1.7—

Agentic & Tool Use Not comparable

DeepSeek-R1: 30.7 (#75), Qwen-14B: —

Agentic & Tool Use benchmarks
BenchmarkDeepSeek-R1Qwen-14B
DeepResearch Bench35.1%—
BALROG34.9%—
METR Time Horizons53.8%—

Reasoning Too close to call

DeepSeek-R1: 18.6 (#278), Qwen-14B: 19.6 (#257)

Reasoning benchmarks
BenchmarkDeepSeek-R1Qwen-14B
LMArena Hard Prompts14161027
Epoch Capabilities Index141.29113.03
ARC-AGI-21.3%—
SimpleBench40.8%—
Kagi LLM Benchmark69.4%—
ARC-AGI-121.2%—
CritPt1.1%—
LiveBench Reasoning83.2%—
LiveBench Data Analysis69.8%—
BIG-Bench Hard—55%
ForecastBench60—
LAMBADA—71.1%
LiveBench71.6%—
PIQA—79.9%

Math DeepSeek-R1 leads

DeepSeek-R1: 43.8 (#79), Qwen-14B: 31.2 (#227)

Math benchmarks
BenchmarkDeepSeek-R1Qwen-14B
LMArena Math14001068
OTIS Mock AIME 2024-202566.4%—
Omni-MATH42.4%—
LiveBench Math80.7%—
MATH Level 596.6%—
GSM8K—61.3%

Knowledge Not comparable

DeepSeek-R1: 44.5 (#87), Qwen-14B: —

Knowledge benchmarks
BenchmarkDeepSeek-R1Qwen-14B
GPQA Diamond76.3%—
MMLU-Pro79.3%—
Confabulations12.7%—
Vectara Hallucination Rate11.3%—
GPQA (HELM)66.6%—
LMArena Expert1394—
ARC (AI2) Challenge—84.4%
BoolQ—86.2%
MMLU—66.3%

Multilingual DeepSeek-R1 leads

DeepSeek-R1: 52.4 (#85), Qwen-14B: 27.5 (#275)

Multilingual benchmarks
BenchmarkDeepSeek-R1Qwen-14B
LMArena Non-English14121041
LMArena Chinese14421077
LMArena French1417—
LMArena German1404—
LMArena Japanese1391—
LMArena Korean1360—
LMArena Russian1423—
LMArena Spanish1411—

Instruction Following DeepSeek-R1 leads

DeepSeek-R1: 72.0 (#143), Qwen-14B: 52.4 (#289)

Instruction Following benchmarks
BenchmarkDeepSeek-R1Qwen-14B
LMArena Instruction Following13821031
LiveBench Instruction Following80.5%—
IFEval78.4%—

Long Context DeepSeek-R1 leads

DeepSeek-R1: 45.4 (#36), Qwen-14B: 31.3 (#280)

Long Context benchmarks
BenchmarkDeepSeek-R1Qwen-14B
LMArena Longer Query13911028
Fiction.LiveBench75%—

Writing & Preference DeepSeek-R1 leads

DeepSeek-R1: 61.4 (#88), Qwen-14B: 27.6 (#299)

Writing & Preference benchmarks
BenchmarkDeepSeek-R1Qwen-14B
LMArena Text14281051
LMArena Creative Writing14051028
LMArena Multi-Turn14051022
Short-Story Creative Writing83%—
EQ-Bench Creative Writing1500—
WildBench82.8%—
LiveBench Language48.5%—

Frequently asked questions

Is DeepSeek-R1 better than Qwen-14B?

DeepSeek-R1 is the stronger model overall, scoring 42.3 to 31.4 on the Noometry Index.

Is DeepSeek-R1 or Qwen-14B better for coding?

DeepSeek-R1 scores higher on coding benchmarks: 46.3 versus 31.2 in the Noometry coding category.

How many benchmarks do DeepSeek-R1 and Qwen-14B share?

11 benchmarks have published results for both models. DeepSeek-R1 has 52 scored results on Noometry and Qwen-14B has 18.

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