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APDMem: Agent-Controlled Progressive Disclosure for Query-Adaptive Long-Term Memory

APDMem, a hierarchical long-term memory architecture for personalized LLM assistants, achieves strong performance on the LongMemEval benchmark while accessing only 8% of total conversations, according to an arXiv paper (arXiv:2610.02472v1). APDMem represents conversation history as four progressively detailed layers — thematic summaries, personalized key facts, turn-level evidence notes, and raw messages — and uses an agent controller to read high-level summaries first and drill into finer evidence only when a query requires it. A note synthesizer then consolidates retrieved evidence into a query-focused structure that orders events and flags contradictions before final answer generation.

by read1 min views5 publishedOct 5, 2026

arXiv:2610.02472v1 Announce Type: new Abstract: Personalized LLM assistants must recover sparse evidence from long conversation histories across queries of varying complexity. We introduce APDMem (Agent-controlled Progressive Disclosure Memory), a hierarchical long-term memory architecture that applies progressive disclosure to memory retrieval. Rather than relying on a flat memory store or fixed retrieval granularity, APDMem represents conversation history as four progressively detailed layers: thematic summaries, personalized key facts, turn-level evidence notes, and raw messages. At inference time, a controller applies progressive disclosure to the memory hierarchy: it first reads high-level summaries and drills into finer evidence only when needed. This creates an adaptive cost-fidelity trade-off: simple queries can terminate early, while complex temporal, multi-hop, or exact-evidence queries trigger deeper inspection. A note synthesizer converts retrieved evidence into a query-focused structure that consolidates facts, orders events, and flags contradictions before final answer generation. Experiments on LongMemEval show that APDMem achieves strong performance for long-context memory reasoning while accessing only 8% of the total conversations.

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