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Context Language Models
Context Language Models (CLMs) are introduced as language models that manage their own context by treating it as a file for unrestricted updates. This approach allows CLMs to learn essential context and extends to multi-agent systems. CLMs outperform state-of-the-art context management strategies, achieving 11.4% higher accuracy with 21.5% fewer FLOPs on BrowseComp-Plus and 5% higher scores with 59% fewer FLOPs on 12-hour EdgeBench. They also enable in-context and parametric learning of context-management strategies, improving held-out accuracy by up to 35.9 points.
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收录当时偏移:UTC+02026年10月1日 18:00 UTC
- 收录
- 2026年10月1日 18:00
- 来源类型
- 研究
- 判定依据
- 热度约为该来源近期上榜条目中位水平的 6.7 倍
- 指标对比
- 141 vs 中位 21(20 条基线样本)
- 检出时间
- 10/02 02:00
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