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LoRA-generating hypernetworks for efficient on-device LLM generative personalization

Paper recorded by Signals 4 on 2026-09-21 in cs.LG. Abstract reproduced from arXiv; link to the original below.

Published 2026-09-21 on arXiv · recorded by Signals 4 on 2026-09-22

Category: cs.LG · 机器学习 · first seen 2026-09-22

Abstract

On-device large language models (`LLMs'), e.g. running on mobile phones, are ripe for improvement via personalization. The limited compute resources of mobile devices impose limits on model scale and thus model quality, making any realizable quality gains highly impactful. At the same time, their personal nature (i.e., the close coupling to a particular user) means that a given on-device LLM tends

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#3 most recent of 250 cs.LG papers we have recorded · ↑ newer: onPanda: Efficient Annotation of On-Policy Alignment Data for LLMs and · ↓ older: JAREX: An Acquisition Function for Multi-Objective Algorithmic Process
Cite this page: LoRA-generating hypernetworks for efficient on-device LLM generative personalization: the #3 most recent of 250 cs.LG papers we have recorded (as of 2026-09-21). Source: Signals 4 (Signals API) — https://data.jiangzhang.ca/signals4/t/papers/lora-generating-hypernetworks-for-efficient-on-device-llm-generative-personaliza.html
Free to quote with attribution to “Signals 4 (Signals API)”. Machine-readable: papers.json
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