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reasoning benchmark

Seal-0

Seal-0 is a benchmark for evaluating agentic search capabilities, testing models' ability to navigate and retrieve information using tools.

Updated Aug 11, 2026

Models6
Model coverage6
MetricScore
EvidenceB

On this page

  • Ranking
  • Distribution
  • Highlights
  • About
  • FAQ

Seal-0 Ranking

Higher score ranks better on this benchmark.

6 rows
Columns

Show columns

01MAKimi K2.5Moonshot AI57.4%100.0%6CAug 11, 2026
02MAKimi K2-Thinking-0905Moonshot AI56.3%80.0%6CAug 11, 2026
03ACQwen3.5-27BAlibaba Cloud / Qwen Team47.2%60.0%6CAug 11, 2026
04ACQwen3.5-397B-A17BAlibaba Cloud / Qwen Team46.9%40.0%6CAug 11, 2026
05ACQwen3.5-122B-A10BAlibaba Cloud / Qwen Team44.1%20.0%6CAug 11, 2026
06ACQwen3.5-35B-A3BAlibaba Cloud / Qwen Team41.4%0.0%6CAug 11, 2026

Seal-0 Score Distribution

A closer view of the leading scores on this benchmark.

Seal-0

Seal-0 Highlights

The leading models and scores on this benchmark.

Rank #1Kimi K2.557.4%Rank #2Kimi K2-Thinking-090556.3%Rank #3Qwen3.5-27B47.2%Rank #4Qwen3.5-397B-A17B46.9%

What is Seal-0?

What Seal-0 measures and how its scores work.

Seal-0 is a benchmark for evaluating agentic search capabilities, testing models' ability to navigate and retrieve information using tools.

Scores are shown in ratio. This benchmark is not independently verified and has an evidence level of B.

Family
Seal-0
Modality
text
Primary category
reasoning
Score direction
higher
LLMBoard eligible
Yes
Evaluation key
seal-0|llm-stats-current

Benchmark scores retain their original unit. Overall score eligibility is shown separately.

FAQ

Common questions about Seal-0.

Which model scores highest on Seal-0?

Kimi K2.5 is currently ranked first with 57.4%.

What does Seal-0 measure?

Seal-0 is a benchmark for evaluating agentic search capabilities, testing models' ability to navigate and retrieve information using tools.

Is a higher score better?

Yes. Higher values rank better for this benchmark.

How many models are compared?

6 model results are currently shown.

Does this benchmark affect the overall score?

Yes. This benchmark can contribute to the current LLMBoard capability score.