Model comparison

Claude Opus 4.8 vs GLM-5

Claude Opus 4.8 is the stronger model overall, scoring 60.7 to 46.1 on the Noometry Index. GLM-5 costs 6.5× less per token, which makes it the better buy when Claude Opus 4.8's lead doesn't matter for your workload.

Last verified . 36 shared benchmarks.

Claude Opus 4.8 Anthropic

60.7

Rank #13 Confirmed

GLM-5 Z.ai (Zhipu)

46.1

Rank #66 Confirmed

Summary

  • They share 36 benchmarks with published results for both. Claude Opus 4.8 scores higher in 9 categories and GLM-5 in 0 categories; 8 gaps are clear of the uncertainty.
  • The widest gap is in reasoning, where Claude Opus 4.8 leads 64.7 to 27.6.
  • The biggest single-benchmark swing is ARC-AGI-2: 72.1% for Claude Opus 4.8 and 4.9% for GLM-5.
  • GLM-5 is cheaper at $1 / $3.20 per million input/output tokens, against $5 / $25 for Claude Opus 4.8.
  • Claude Opus 4.8 accepts more context: 1M tokens versus 205K.
  • GLM-5 has downloadable open weights; the other is API-only.

Side by side

Claude Opus 4.8 and GLM-5 specifications
Claude Opus 4.8GLM-5
ProviderAnthropicZ.ai (Zhipu)
Noometry Index60.746.1
Released2026-05-282026-02-11
WeightsProprietaryOpen
Context window1M205K
Max output128K131K
Input $ / M tokens$5$1
Output $ / M tokens$25$3.20
Results tracked6545

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Category by category

Coding Claude Opus 4.8 leads

Claude Opus 4.8: 59.9 (#12), GLM-5: 49.0 (#52)

Coding benchmarks
BenchmarkClaude Opus 4.8GLM-5
LMArena WebDev15561434
WeirdML82.9%48.2%
LMArena Coding14901461
ALE-Bench1,564765.62
SWE-bench Verified—72.1%
DeepSWE59%—
FrontierCode46.5%—
SWE-bench Verified (bash only)—72.8%
SWE-bench Multilingual—69.7%
SciCode53.5%—
GSO47.1%—

Agentic & Tool Use Claude Opus 4.8 leads

Claude Opus 4.8: 47.6 (#11), GLM-5: 31.1 (#71)

Agentic & Tool Use benchmarks
BenchmarkClaude Opus 4.8GLM-5
τ²-bench Banking39.7%9.8%
Vending-Bench 25,7874,432
Terminal-Bench—52.4%
APEX-Agents48.9%—
OSWorld 2.020.6%—
Remote Labor Index8.3%—
τ²-bench Airline—82.5%
τ²-bench Retail—73.7%
τ²-bench Telecom—86.8%
DeepResearch Bench50.2%—
PostTrainBench33.8%—
GBAEval70.9%—
GDP.pdf24%—
LMArena Search1204—

Reasoning Claude Opus 4.8 leads

Claude Opus 4.8: 64.7 (#16), GLM-5: 27.6 (#116)

Reasoning benchmarks
BenchmarkClaude Opus 4.8GLM-5
ARC-AGI-272.1%4.9%
SimpleBench64.8%53.2%
Kagi LLM Benchmark88.8%75%
NYT Connections (extended)91.1%74.8%
ARC-AGI-192.5%44.7%
Chess Puzzles34%10%
LMArena Hard Prompts14821452
Epoch Capabilities Index158.21145.83
ForecastBench59.961
CritPt20.9%—
EnigmaEval23.5%—
EBR-Bench28.6%—
Mystery Game Puzzles36%—
DTBench94.9%—
LMCA57.5%—
Surface Evolver Bench87.5%—
Bench to the Future 30.14—

Math Claude Opus 4.8 leads

Claude Opus 4.8: 78.4 (#13), GLM-5: 46.4 (#71)

Knowledge Claude Opus 4.8 leads

Claude Opus 4.8: 61.3 (#29), GLM-5: 52.3 (#64)

Knowledge benchmarks
BenchmarkClaude Opus 4.8GLM-5
GPQA Diamond91%87.8%
LMArena Expert15021454
SimpleQA Verified53%—
Vectara Hallucination Rate—10.1%

Multimodal Not comparable

Claude Opus 4.8: 42.9 (#26), GLM-5: —

Multimodal benchmarks
BenchmarkClaude Opus 4.8GLM-5
LMArena Vision1294—
Blueprint-Bench 214.5%—
Furniture Assembly42.5%—
LMArena Document1475—

Multilingual Claude Opus 4.8 leads

Claude Opus 4.8: 55.2 (#33), GLM-5: 53.7 (#58)

Multilingual benchmarks
BenchmarkClaude Opus 4.8GLM-5
LMArena Non-English14501430
LMArena Chinese15071511
LMArena French14811455
LMArena German14721445
LMArena Japanese14401416
LMArena Korean14321423
LMArena Russian14741436
LMArena Spanish14661454

Instruction Following Claude Opus 4.8 leads

Claude Opus 4.8: 77.4 (#24), GLM-5: 75.2 (#67)

Instruction Following benchmarks
BenchmarkClaude Opus 4.8GLM-5
LMArena Instruction Following14761428

Long Context Too close to call

Claude Opus 4.8: 45.4 (#35), GLM-5: 44.7 (#60)

Long Context benchmarks
BenchmarkClaude Opus 4.8GLM-5
LMArena Longer Query14831446
CL-bench—18.7%

Writing & Preference Claude Opus 4.8 leads

Claude Opus 4.8: 72.0 (#16), GLM-5: 66.0 (#38)

Writing & Preference benchmarks
BenchmarkClaude Opus 4.8GLM-5
LMArena Text14611446
LMArena Creative Writing14541439
EQ-Bench Creative Writing18401601
LMArena Multi-Turn14761456
EQ-Bench 41281—

Frequently asked questions

Is Claude Opus 4.8 better than GLM-5?

Claude Opus 4.8 is the stronger model overall, scoring 60.7 to 46.1 on the Noometry Index. GLM-5 costs 6.5× less per token, which makes it the better buy when Claude Opus 4.8's lead doesn't matter for your workload.

Which is cheaper, Claude Opus 4.8 or GLM-5?

GLM-5 is cheaper. It lists at $1 per million input tokens and $3.20 per million output tokens; Claude Opus 4.8 lists at $5 and $25.

Is Claude Opus 4.8 or GLM-5 better for coding?

Claude Opus 4.8 scores higher on coding benchmarks: 59.9 versus 49.0 in the Noometry coding category.

Which has the bigger context window?

Claude Opus 4.8 does, with 1M tokens against 205K.

How many benchmarks do Claude Opus 4.8 and GLM-5 share?

36 benchmarks have published results for both models. Claude Opus 4.8 has 65 scored results on Noometry and GLM-5 has 45.

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