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long context benchmark

MRCR v2

MRCR v2 (Multi-Round Coreference Resolution version 2) is an enhanced version of the synthetic long-context reasoning task. It extends the original MRCR framework with improved evaluation criteria and additional complexity for testing models' ability to maintain attention and reasoning across extended contexts.

Updated Aug 11, 2026

Models3
Model coverage3
MetricScore
EvidenceB

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  • Ranking
  • Distribution
  • Highlights
  • About
  • FAQ

MRCR v2 Ranking

Higher score ranks better on this benchmark.

3 rows
Columns

Show columns

01ACQwen3.7-PlusAlibaba Cloud / Qwen Team91.7%100.0%3CAug 11, 2026
02GODiffusionGemma 26B-A4BGoogle32.0%50.0%3CAug 11, 2026
03GOGemini 2.5 Flash-LiteGoogle16.6%0.0%3CAug 11, 2026

MRCR v2 Score Distribution

A closer view of the leading scores on this benchmark.

MRCR v2

MRCR v2 Highlights

The leading models and scores on this benchmark.

Rank #1Qwen3.7-Plus91.7%Rank #2DiffusionGemma 26B-A4B32.0%Rank #3Gemini 2.5 Flash-Lite16.6%

What is MRCR v2?

What MRCR v2 measures and how its scores work.

MRCR v2 (Multi-Round Coreference Resolution version 2) is an enhanced version of the synthetic long-context reasoning task. It extends the original MRCR framework with improved evaluation criteria and additional complexity for testing models' ability to maintain attention and reasoning across extended contexts.

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

Family
MRCR v2
Modality
text
Primary category
long context
Score direction
higher
LLMBoard eligible
Yes
Evaluation key
mrcr-v2|llm-stats-current

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

FAQ

Common questions about MRCR v2.

Which model scores highest on MRCR v2?

Qwen3.7-Plus is currently ranked first with 91.7%.

What does MRCR v2 measure?

MRCR v2 (Multi-Round Coreference Resolution version 2) is an enhanced version of the synthetic long-context reasoning task. It extends the original MRCR framework with improved evaluation criteria and additional complexity for testing models' ability to maintain attention and reasoning across extended contexts.

Is a higher score better?

Yes. Higher values rank better for this benchmark.

How many models are compared?

3 model results are currently shown.

Does this benchmark affect the overall score?

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