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Scaling llm multi-turn rl with end-to-end summarization-based context management

11 Pith papers cite this work. Polarity classification is still indexing.

11 Pith papers citing it

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2026 11

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ECHO: Prune to act, trace to learn with selective turn memory in agentic RL

cs.LG · 2026-06-30 · unverdicted · novelty 6.0

ECHO is a selective turn-memory framework for agentic RL that compresses turns into indexed records, selects them for bounded contexts, and uses source indices to assign outcome credit to supporting evidence, reaching 43.4% accuracy on BrowseComp-Plus versus 28.9% for GRPO and 36.1% for SUPO.

Scaling Self-Evolving Agents via Parametric Memory

cs.AI · 2026-06-03 · unverdicted · novelty 6.0

TMEM lets LLM agents evolve their policy mid-episode by absorbing distilled supervision into online LoRA updates, outperforming summary and retrieval baselines on several long-context benchmarks.

SAM: State-Adaptive Memory for Long-Horizon Reasoning Agent

cs.AI · 2026-05-23 · unverdicted · novelty 6.0

SAM is a standalone memory framework for long-horizon LLM agents that creates state-adaptive cues from interactions, preserves raw trajectories for intent-driven recall, and optimizes the module via expert supervision and RL, outperforming baselines on BrowseComp and related benchmarks.

SWE-MeM: Learning Adaptive Memory Management for Long-Horizon Coding Agents

cs.SE · 2026-06-26 · unverdicted · novelty 5.0

SWE-MeM introduces adaptive memory management for coding agents via synthesized trajectories and Memory-aware GRPO, reporting 43.4% and 60.2% resolve rates on SWE-Bench Verified for 4B and 30B models while beating baselines on performance and token use.

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