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[ARTICLE · art-91434] src=arxiv.org ↗ pub= topic=artificial-intelligence verified=true sentiment=· neutral

Controlled Memory Interference in Continual LLM Agents

A new framework called Controlled Memory Interference (CMI), introduced in an arXiv paper (2608.07622v1), reveals that relationship-specific interference between memories sharply suppresses update plasticity in continual LLM agents, with little stability gain, while benign accumulation has limited effects. The study shows that Lexical and Dense retrieval exhibit distinct interference pathways, and poisoning is more sensitive to update-authority cues than recency. CMI also provides targeted examples for interference-aware memory learning, improving the distinction between valid updates and interference-inducing memories while preserving performance on original tasks.

read1 min views1 publishedAug 11, 2026

arXiv:2608.07622v1 Announce Type: new Abstract: Long-term memory enables AI agents to maintain continuity across sessions, personalize behavior, and evolve through accumulated experience. Yet memory evolution is not simply a process of storing more information: new experiences may reinforce, revise, or interfere with existing memory states. Existing systems mainly emphasize memory construction and relevance-based retrieval, but several memories may remain simultaneously relevant while differing in state, temporal validity, or authority. We introduce Controlled Memory Interference (CMI), a controlled diagnostic and data-generation framework for studying how agent memory evolves under different memory relationships. Across controlled memory evolution, benign accumulation has limited effects, whereas relationship-specific interference sharply suppresses update plasticity with little stability gain, either by blocking target-memory exposure or by disrupting its downstream use. Lexical and Dense retrieval exhibit distinct interference pathways, while poisoning is more sensitive to update-authority cues than to recency alone. Beyond diagnosis, CMI provides targeted examples for interference-aware memory learning, improving the distinction between valid updates and interference-inducing memories while preserving performance on original memory tasks. These findings show that memory evolution is shaped not only by memory scale, but also by interactions among accumulated experiences. More broadly, memory interference emerges as an important factor for reliable continual agent memory systems.

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