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Author

Changze Lv

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#artificial intelligence Preprint Sep 2026

QuantaSpike: Short-Window Spike-Driven Quantization for Large Language Models

Large language models (LLMs) achieve strong performance across many tasks but rely on dense multiply-accumulate (MAC) operations during inference, resulting in high energy cost. Spiking neural networks (SNNs) offer an event-driven alternative in which synaptic integration uses lightweight accumulation. However, spike-d...

Bang Hu, Guo-Wei Zhu, Changze Lv et al. · 0 citations
#artificial intelligence Conference Jan 2026

Controllable Memory Usage: Balancing Anchoring and Innovation in Long-Term Human-Agent Interaction

This work shows that an agent's reliance on memory can be modeled as an explicit and user-controllable dimension, and proposes a framework that allows users to dynamically regulate memory reliance, ranging from a fresh-start mode that promotes innovation to a high-fidelity mode that closely follows interaction history.

Mu-Zhao Tian, Zi-Su Huang, Xiaohua Wang et al. · 0 citations

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