Model comparison

GLM-5 vs GPT-5.3 Chat

GLM-5 is the stronger model overall, scoring 46.1 to 42.8 on the Noometry Index.

Last verified . 18 shared benchmarks.

GLM-5 Z.ai (Zhipu)

46.1

Rank #66 Confirmed

GPT-5.3 Chat OpenAI

42.8

Rank #109 Confirmed

Summary

  • They share 18 benchmarks with published results for both. GLM-5 scores higher in 7 categories and GPT-5.3 Chat in 1 category; 7 gaps are clear of the uncertainty.
  • The widest gap is in knowledge, where GLM-5 leads 52.3 to 38.8.
  • GLM-5 is cheaper at $1 / $3.20 per million input/output tokens, against $1.75 / $14 for GPT-5.3 Chat.
  • GLM-5 accepts more context: 205K tokens versus 128K.
  • GLM-5 has downloadable open weights; the other is API-only.

Side by side

GLM-5 and GPT-5.3 Chat specifications
GLM-5GPT-5.3 Chat
ProviderZ.ai (Zhipu)OpenAI
Noometry Index46.142.8
Released2026-02-112026-03-03
WeightsOpenProprietary
Context window205K128K
Max output131K16K
Input $ / M tokens$1$1.75
Output $ / M tokens$3.20$14
Results tracked4518

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Category by category

Coding GLM-5 leads

GLM-5: 49.0 (#52), GPT-5.3 Chat: 41.4 (#124)

Coding benchmarks
BenchmarkGLM-5GPT-5.3 Chat
LMArena Coding14611408
SWE-bench Verified72.1%—
SWE-bench Verified (bash only)72.8%—
LMArena WebDev1434—
SWE-bench Multilingual69.7%—
WeirdML48.2%—
ALE-Bench765.62—

Agentic & Tool Use Not comparable

GLM-5: 31.1 (#71), GPT-5.3 Chat: —

Agentic & Tool Use benchmarks
BenchmarkGLM-5GPT-5.3 Chat
Terminal-Bench52.4%—
τ²-bench Airline82.5%—
τ²-bench Banking9.8%—
τ²-bench Retail73.7%—
τ²-bench Telecom86.8%—
Vending-Bench 24,432—

Reasoning Too close to call

GLM-5: 27.6 (#116), GPT-5.3 Chat: 28.5 (#102)

Reasoning benchmarks
BenchmarkGLM-5GPT-5.3 Chat
LMArena Hard Prompts14521399
ARC-AGI-24.9%—
SimpleBench53.2%—
Kagi LLM Benchmark75%—
NYT Connections (extended)74.8%—
ARC-AGI-144.7%—
Chess Puzzles10%—
Epoch Capabilities Index145.83—
ForecastBench61—

Math GLM-5 leads

GLM-5: 46.4 (#71), GPT-5.3 Chat: 38.2 (#142)

Knowledge GLM-5 leads

GLM-5: 52.3 (#64), GPT-5.3 Chat: 38.8 (#140)

Knowledge benchmarks
BenchmarkGLM-5GPT-5.3 Chat
LMArena Expert14541397
GPQA Diamond87.8%—
Vectara Hallucination Rate10.1%—

Multilingual GLM-5 leads

GLM-5: 53.7 (#58), GPT-5.3 Chat: 50.3 (#124)

Multilingual benchmarks
BenchmarkGLM-5GPT-5.3 Chat
LMArena Non-English14301382
LMArena Chinese15111432
LMArena French14551397
LMArena German14451384
LMArena Japanese14161352
LMArena Korean14231346
LMArena Russian14361400
LMArena Spanish14541371

Instruction Following GLM-5 leads

GLM-5: 75.2 (#67), GPT-5.3 Chat: 72.8 (#129)

Instruction Following benchmarks
BenchmarkGLM-5GPT-5.3 Chat
LMArena Instruction Following14281378

Long Context GLM-5 leads

GLM-5: 44.7 (#60), GPT-5.3 Chat: 42.6 (#120)

Long Context benchmarks
BenchmarkGLM-5GPT-5.3 Chat
LMArena Longer Query14461396
CL-bench18.7%—

Writing & Preference GLM-5 leads

GLM-5: 66.0 (#38), GPT-5.3 Chat: 63.1 (#68)

Writing & Preference benchmarks
BenchmarkGLM-5GPT-5.3 Chat
LMArena Text14461389
LMArena Creative Writing14391355
EQ-Bench Creative Writing16011690
LMArena Multi-Turn14561412

Frequently asked questions

Is GLM-5 better than GPT-5.3 Chat?

GLM-5 is the stronger model overall, scoring 46.1 to 42.8 on the Noometry Index.

Which is cheaper, GLM-5 or GPT-5.3 Chat?

GLM-5 is cheaper. It lists at $1 per million input tokens and $3.20 per million output tokens; GPT-5.3 Chat lists at $1.75 and $14.

Is GLM-5 or GPT-5.3 Chat better for coding?

GLM-5 scores higher on coding benchmarks: 49.0 versus 41.4 in the Noometry coding category.

Which has the bigger context window?

GLM-5 does, with 205K tokens against 128K.

How many benchmarks do GLM-5 and GPT-5.3 Chat share?

18 benchmarks have published results for both models. GLM-5 has 45 scored results on Noometry and GPT-5.3 Chat has 18.

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