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Quantum-Enhanced LLM Efficient Fine Tuning

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arxiv 2503.12790 v2 pith:MGHVV3XJ submitted 2025-03-17 quant-ph cs.AI

Quantum-Enhanced LLM Efficient Fine Tuning

classification quant-ph cs.AI
keywords quantumfine-tuninglow-ranknetworkqthatensoradaptationlora
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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Low-Rank Adaptation (LoRA) enables efficient fine-tuning of pre-trained language models through low-rank matrix approximation, achieving effectiveness in many scenarios. However, its representation capacity is constrained in complex tasks or high-rank dependency settings, potentially limiting model adaptability. To overcome the expressive bottleneck in classical low-rank approximation for fine-tuning large language models (LLMs), we propose Quantum Tensor Hybrid Adaptation (QTHA), a parameter-efficient fine-tuning method that integrates a quantum neural network (QNN) with a tensor network. QTHA explores quantum tensor hybrid fine-tuning within low-rank spaces by decomposing pre-trained weights into quantum neural network and tensor network representations, leveraging quantum state superposition to overcome classical rank limitations. Experiments demonstrate that QTHA achieves performance comparable to or surpassing LoRA in parameter-efficient fine-tuning. Compared to LoRA, QTHA reduces trainable parameters by 76% while reducing training loss by up to 17% and improving test set performance by up to 17% within the same training steps. This research not only enables lightweight adaptation of quantum resources to the billion-parameter models but also validates the feasibility of quantum hardware optimization driven by LLM tasks. It establishes the first engineering-ready foundation for future quantum-enhanced Artificial General Intelligence (AGI) systems.

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  1. Quantum-enhanced Large Language Models on Quantum Hardware via Cayley Unitary Adapters

    quant-ph 2026-05 unverdicted novelty 8.0

    Cayley unitary adapters executed on real quantum hardware improve LLM perplexity by 1.4% on Llama 3.1 8B with 6000 parameters and recover 83% of compression-induced degradation on SmolLM2.