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Aozhong Zhang
ورقتان في مجموعة PaperMetrix
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COMQ: A Backpropagation-Free Algorithm for Post-Training Quantization
2025 · IEEE Access
Post-training quantization (PTQ) has emerged as a practical approach to compress large neural networks, making them highly efficient for deployment. However, effectively reducing these models to their low-bit counterparts without compromising the original accuracy remains …
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DiaBlo: Diagonal Blocks Are Sufficient For Finetuning
2025 · arXiv (Cornell University)
Fine-tuning is a critical step for adapting large language models (LLMs) to domain-specific downstream tasks. To mitigate the substantial computational and memory costs of full-model fine-tuning, Parameter-Efficient Fine-Tuning (PEFT) methods have been proposed to update …