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Memora: A Harmonic Memory Representation Balancing Abstraction and Specificity

3 days ago
  • #long-horizon tasks
  • #memory systems
  • #AI agents
  • Memora is a scalable memory system designed to improve AI agent productivity on long-horizon tasks by decoupling storage from retrieval.
  • It addresses the trade-off between specificity and abstraction in existing memory systems like Mem0 and RAG by using primary abstractions and cue anchors.
  • Memora achieves state-of-the-art performance on benchmarks like LoCoMo and LongMemEval, reducing token usage by up to 98% compared to full-context inference.
  • The system includes a policy-guided retriever that enables iterative, multi-hop reasoning, mimicking human-like memory recall.
  • Future directions include MemLoop, Deferred Memory, and Group Memory to enhance learning, timing, and sharing of knowledge across agents.
  • The research is published at ICML 2026, with code available on GitHub for community use.