Model comparison

DeepSeek-V3 vs Yi-1.5-34B

DeepSeek-V3 is the stronger model overall, scoring 39.5 to 30.6 on the Noometry Index.

Last verified . 21 shared benchmarks.

DeepSeek-V3 DeepSeek

39.5

Rank #166 Confirmed

Yi-1.5-34B 01.AI

30.6

Rank #289 Confirmed

Summary

  • They share 21 benchmarks with published results for both. DeepSeek-V3 scores higher in 6 categories and Yi-1.5-34B in 2 categories; 7 gaps are clear of the uncertainty.
  • The widest gap is in knowledge, where DeepSeek-V3 leads 37.5 to 14.8.
  • The biggest single-benchmark swing is MATH Level 5: 75.5% for DeepSeek-V3 and 25.5% for Yi-1.5-34B.

Side by side

DeepSeek-V3 and Yi-1.5-34B specifications
DeepSeek-V3Yi-1.5-34B
ProviderDeepSeek01.AI
Noometry Index39.530.6
Released2024-12-262024-05-13
WeightsOpenOpen
Context window164K—
Max output164K—
Input $ / M tokens$0.24—
Output $ / M tokens$0.90—
Results tracked6021

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Category by category

Coding DeepSeek-V3 leads

DeepSeek-V3: 42.3 (#106), Yi-1.5-34B: 32.4 (#272)

Coding benchmarks
BenchmarkDeepSeek-V3Yi-1.5-34B
BigCodeBench Instruct50%33.9%
LMArena Coding13681169
BigCodeBench Complete62.2%43.8%
Aider Polyglot55.1%—
SciCode35.8%—
WeirdML36.1%—
LiveBench Coding70.9%—
HumanEval+86.6%—
MBPP+73%—

Agentic & Tool Use Not comparable

DeepSeek-V3: —, Yi-1.5-34B: —

Agentic & Tool Use benchmarks
BenchmarkDeepSeek-V3Yi-1.5-34B
METR Time Horizons49.6%—

Reasoning Yi-1.5-34B leads

DeepSeek-V3: 20.5 (#236), Yi-1.5-34B: 22.5 (#191)

Reasoning benchmarks
BenchmarkDeepSeek-V3Yi-1.5-34B
LMArena Hard Prompts13651160
SimpleBench27.2%—
Kagi LLM Benchmark52.3%—
CritPt0%—
LiveBench Reasoning65.8%—
DTBench64.8%—
LiveBench Data Analysis60.9%—
LMCA15.5%—
BIG-Bench Hard87.5%—
Epoch Capabilities Index135.94—
ForecastBench59.1—
HellaSwag88.9%—
LiveBench66.9%—
PIQA84.7%—
WinoGrande85.2%—

Math DeepSeek-V3 leads

DeepSeek-V3: 32.1 (#219), Yi-1.5-34B: 27.5 (#249)

Math benchmarks
BenchmarkDeepSeek-V3Yi-1.5-34B
LMArena Math13731182
MATH Level 575.5%25.5%
OTIS Mock AIME 2024-202537.8%—
Omni-MATH40.3%—
LiveBench Math73.5%—
FrontierMath (Feb 2025 set)1.7%—

Knowledge DeepSeek-V3 leads

DeepSeek-V3: 37.5 (#155), Yi-1.5-34B: 14.8 (#295)

Knowledge benchmarks
BenchmarkDeepSeek-V3Yi-1.5-34B
GPQA Diamond67.6%32%
LMArena Expert13511144
MMLU-Pro72.3%—
Confabulations26.1%—
Vectara Hallucination Rate6.1%—
GPQA (HELM)53.8%—
ARC (AI2) Challenge95.3%—
MMLU87.2%—
TriviaQA82.9%—

Multilingual DeepSeek-V3 leads

DeepSeek-V3: 48.5 (#143), Yi-1.5-34B: 32.3 (#256)

Multilingual benchmarks
BenchmarkDeepSeek-V3Yi-1.5-34B
LMArena Non-English13581121
LMArena Chinese13911213
LMArena French13851156
LMArena German13741111
LMArena Japanese13331021
LMArena Korean13191005
LMArena Russian13731091
LMArena Spanish13581121

Instruction Following DeepSeek-V3 leads

DeepSeek-V3: 72.8 (#130), Yi-1.5-34B: 59.2 (#257)

Instruction Following benchmarks
BenchmarkDeepSeek-V3Yi-1.5-34B
LMArena Instruction Following13451139
LiveBench Instruction Following81.5%—
IFEval83.2%—

Long Context Too close to call

DeepSeek-V3: 34.0 (#253), Yi-1.5-34B: 34.6 (#248)

Long Context benchmarks
BenchmarkDeepSeek-V3Yi-1.5-34B
LMArena Longer Query13521143
Fiction.LiveBench50%—

Writing & Preference DeepSeek-V3 leads

DeepSeek-V3: 57.4 (#130), Yi-1.5-34B: 37.4 (#257)

Writing & Preference benchmarks
BenchmarkDeepSeek-V3Yi-1.5-34B
LMArena Text13751173
LMArena Creative Writing13641135
LMArena Multi-Turn13891153
Short-Story Creative Writing77%—
EQ-Bench Creative Writing1472—
WildBench83%—
LiveBench Language49.1%—

Frequently asked questions

Is DeepSeek-V3 better than Yi-1.5-34B?

DeepSeek-V3 is the stronger model overall, scoring 39.5 to 30.6 on the Noometry Index.

Is DeepSeek-V3 or Yi-1.5-34B better for coding?

DeepSeek-V3 scores higher on coding benchmarks: 42.3 versus 32.4 in the Noometry coding category.

How many benchmarks do DeepSeek-V3 and Yi-1.5-34B share?

21 benchmarks have published results for both models. DeepSeek-V3 has 60 scored results on Noometry and Yi-1.5-34B has 21.

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