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Research PaperResearchia:202605.28008

Rethinking Memory as Continuously Evolving Connectivity

Jizhan Fang

Abstract

Existing memory-augmented LLM agents often treat memory as a static repository with pre-defined representations and fixed retrieval pipelines, which is brittle in dynamic agentic environments where feedback, task variation, and heterogeneous signals continuously reshape what should be remembered and how it should be connected. To address this, we propose FluxMem, a connectivity-evolving memory framework that models memory as a heterogeneous graph and progressively refines its topology through th...

Submitted: May 28, 2026Subjects: AI; Artificial Intelligence

Description / Details

Existing memory-augmented LLM agents often treat memory as a static repository with pre-defined representations and fixed retrieval pipelines, which is brittle in dynamic agentic environments where feedback, task variation, and heterogeneous signals continuously reshape what should be remembered and how it should be connected. To address this, we propose FluxMem, a connectivity-evolving memory framework that models memory as a heterogeneous graph and progressively refines its topology through three stages: initial connection formation, feedback-driven refinement, and long-term consolidation. During execution, FluxMem repairs missing links, prunes interference, aligns abstraction granularity, and distills recurrent successful trajectories into reusable procedural circuits, guided by one metric for memory generalizability and evolutionary maturity. Across three fundamentally distinct benchmarks including LoCoMo, Mind2Web, and GAIA, FluxMem achieves consistent state-of-the-art performance, demonstrating strong adaptation and generalization in complex agentic environments. The code will be open-sourced in https://github.com/zjunlp/LightMem.


Source: arXiv:2605.28773v1 - http://arxiv.org/abs/2605.28773v1 PDF: https://arxiv.org/pdf/2605.28773v1 Original Link: http://arxiv.org/abs/2605.28773v1

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Submission Info
Date:
May 28, 2026
Topic:
Artificial Intelligence
Area:
AI
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