Model profile
Z AI
New in 2026

Z.ai: GLM 5V Turbo

Z.ai: GLM 5V Turbo is a budget-priced multimodal generalist from Z AI with partial runtime data, large context posture, and the clearest fit around long-context research / multimodal.

Best for: Long-context research / MultimodalN/A latencyLarge contextBudget pricing
Intelligence
42.9

Benchmark blend

Coding
36.2

Dev workflow signal

Context
203K Tokens

Large

Input Price
$0.00

Budget tier

Decision snapshot
59

Z.ai: GLM 5V Turbo currently reads as a budget multimodal option with large context and a partially published runtime profile.

Overall profile
Selective fit
Best for
Long-context research / Multimodal
Latency tier
N/A
Price tier
Budget
Source coverage
OpenRouterArtificial AnalysisVision signal

Decision Strip

Decision rail before the raw tables

Core buy-side signals stay in one pass. The rest of the page expands only after intelligence, speed, context, and price are clear.

Intelligence
42.9
43

General reasoning and benchmark headroom.

Situational
Speed
N/A
N/A

Latency data is partial.

Unavailable
Context
203K Tokens
88

How much prompt and task state can stay in view.

Above average
Price
$0.00
86

$0.00 output / 1M

Efficient

Editorial Profile

Z.ai: GLM 5V Turbo in one narrative

Positioning, tradeoffs, and fit are consolidated into one read instead of repeating the same story across separate cards.

Selective fitCoding score 36Math score N/AVision enabled

GLM-5V-Turbo is Z.ai’s first native multimodal agent foundation model, built for vision-based coding and agent-driven tasks. It natively handles image, video, and text inputs, excels at long-horizon planning, complex coding, and task execution, and works seamlessly with agents to complete the full loop of “perceive → plan → execute“.

Identity

Z AI multimodal profile

Positioning

Long-context research / Multimodal with large context and partially published runtime.

Cost posture

Efficient spend profile. More comfortable for sustained prompt volume if the capability fit is right.

Strengths
  • Large context headroom supports repo-wide prompts and long research sessions.

  • Vision-capable routing opens up multimodal review and extraction workflows.

Tradeoffs
  • Budget-friendly input pricing is a strength, but raw capability may vary by workload.

  • Latency data is incomplete, so interactive responsiveness is harder to rank confidently.

Best fit
  • Image-grounded review, multimodal extraction, and UI audit workflows.

  • Long-context summarization, repo analysis, and policy or document review.

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Benchmarks

Grouped by job-to-be-done

Only benchmark categories with actual signal are shown. Secondary values stay as simple definitions instead of nested micro-cards.

General intelligence

Broad reasoning, knowledge depth, and flagship benchmark posture.

Intelligence Index
42.9
GPQA
80.9%
HLE
15.8%
Coding

Software implementation, debugging quality, and coding benchmark signal.

Coding Index
36.2
SciCode
43.5%
Agent / tool use

Long-horizon execution quality and interactive benchmark evidence.

IFBench
61.1%
TAU2
98.5%
TerminalBench Hard
32.6%
LCR
61.0%

Specs & Pricing

Technical snapshot and cost posture

Specs stay neutral, pricing gets emphasis through values rather than extra containers. Raw provider internals remain in metadata at the end.

Technical snapshot
Context Window
203K Tokens
Vision
Enabled
Modalities
image, text, video
Tokenizer
Other
Max Completion
131072
Moderation
No
Supported Parameters
include_reasoningmax_tokensreasoningresponse_formattemperaturetool_choicetoolstop_p
Input Modalities
imagetextvideo
Output Modalities
text
Price architecture
Input
per 1M input tokens
$0.00
Output
per 1M output tokens
$0.00
Blended
AA 3:1 mix
$0.00

This model is relatively efficient on price. It is the easier fit when sustained prompt volume matters.

OR Cache Read
$0.00

Metadata

Raw source tables at the end

Verification details remain available, but the page no longer forces them ahead of the editorial read.