Model comparison

GLM-5.3 vs Qwen1.5 4b Chat

GLM-5.3 is the stronger model overall, scoring 54.8 to 28.8 on the Noometry Index.

Last verified . 13 shared benchmarks.

GLM-5.3 Z.ai (Zhipu)

54.8

Rank #26 Confirmed

Qwen1.5 4b Chat Alibaba (Qwen)

28.8

Rank #322 Confirmed

Summary

  • They share 13 benchmarks with published results for both. GLM-5.3 scores higher in 8 categories and Qwen1.5 4b Chat in 0 categories; 8 gaps are clear of the uncertainty.
  • The widest gap is in writing & preference, where GLM-5.3 leads 75.7 to 23.8.

Side by side

GLM-5.3 and Qwen1.5 4b Chat specifications
GLM-5.3Qwen1.5 4b Chat
ProviderZ.ai (Zhipu)Alibaba (Qwen)
Noometry Index54.828.8
Released2026-08-14—
WeightsOpenOpen
Context window1M—
Max output131K—
Input $ / M tokens$1.40—
Output $ / M tokens$4.40—
Results tracked4213

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Category by category

Coding GLM-5.3 leads

GLM-5.3: 59.5 (#14), Qwen1.5 4b Chat: 29.1 (#308)

Coding benchmarks
BenchmarkGLM-5.3Qwen1.5 4b Chat
LMArena Coding1496999
DeepSWE69%—
FrontierCode40.1%—
CursorBench42.6%—
LMArena WebDev1622—
FrontierSWE30.2%—
SciCode59%—
WeirdML75.4%—
ALE-Bench1,317—

Agentic & Tool Use Not comparable

GLM-5.3: 36.4 (#38), Qwen1.5 4b Chat: —

Agentic & Tool Use benchmarks
BenchmarkGLM-5.3Qwen1.5 4b Chat
APEX-Agents56.6%—
Vending-Bench 28,164—

Reasoning GLM-5.3 leads

GLM-5.3: 46.1 (#46), Qwen1.5 4b Chat: 18.5 (#279)

Reasoning benchmarks
BenchmarkGLM-5.3Qwen1.5 4b Chat
LMArena Hard Prompts1489976
NYT Connections (extended)74.2%—
CritPt19.1%—
Chess Puzzles21%—
Mystery Game Puzzles33%—
DTBench87.7%—
LMCA55.5%—
Bench to the Future 30.15—
Epoch Capabilities Index155.61—

Math GLM-5.3 leads

GLM-5.3: 62.3 (#33), Qwen1.5 4b Chat: 30.4 (#234)

Math benchmarks
BenchmarkGLM-5.3Qwen1.5 4b Chat
LMArena Math14891026
FrontierMath (Tiers 1-3)68.8%—
FrontierMath Tier 429.3%—
OTIS Mock AIME 2024-202591.1%—
ProofBench49%—

Knowledge GLM-5.3 leads

GLM-5.3: 58.3 (#37), Qwen1.5 4b Chat: 26.7 (#255)

Knowledge benchmarks
BenchmarkGLM-5.3Qwen1.5 4b Chat
LMArena Expert1516980
GPQA Diamond90.9%—
SimpleQA Verified41%—

Multilingual GLM-5.3 leads

GLM-5.3: 55.7 (#28), Qwen1.5 4b Chat: 24.1 (#290)

Multilingual benchmarks
BenchmarkGLM-5.3Qwen1.5 4b Chat
LMArena Non-English1457979
LMArena Chinese15281024
LMArena German1499902
LMArena Russian1463952
LMArena French1499—
LMArena Japanese1453—
LMArena Korean1472—
LMArena Spanish1460—

Instruction Following GLM-5.3 leads

GLM-5.3: 77.5 (#23), Qwen1.5 4b Chat: 49.0 (#300)

Instruction Following benchmarks
BenchmarkGLM-5.3Qwen1.5 4b Chat
LMArena Instruction Following1477978

Long Context GLM-5.3 leads

GLM-5.3: 45.4 (#41), Qwen1.5 4b Chat: 30.1 (#290)

Long Context benchmarks
BenchmarkGLM-5.3Qwen1.5 4b Chat
LMArena Longer Query1482988

Writing & Preference GLM-5.3 leads

GLM-5.3: 75.7 (#6), Qwen1.5 4b Chat: 23.8 (#309)

Writing & Preference benchmarks
BenchmarkGLM-5.3Qwen1.5 4b Chat
LMArena Text1471997
LMArena Creative Writing1457969
LMArena Multi-Turn1472977
EQ-Bench Creative Writing2075—

Frequently asked questions

Is GLM-5.3 better than Qwen1.5 4b Chat?

GLM-5.3 is the stronger model overall, scoring 54.8 to 28.8 on the Noometry Index.

Is GLM-5.3 or Qwen1.5 4b Chat better for coding?

GLM-5.3 scores higher on coding benchmarks: 59.5 versus 29.1 in the Noometry coding category.

How many benchmarks do GLM-5.3 and Qwen1.5 4b Chat share?

13 benchmarks have published results for both models. GLM-5.3 has 42 scored results on Noometry and Qwen1.5 4b Chat has 13.

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