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Learning to summarize with human feedback
The paper presents a study on the impact of synthetic data on large language models (LLMs) and proposes a method to steer LLMs towards desirable non-differentiable attributes. -
WikiText-2 dataset
The WikiText-2 dataset is a benchmark for evaluating the performance of large language models. -
C4 dataset
The dataset used in the paper is not explicitly mentioned, but it is mentioned that the authors trained a GPT2 transformer language model on the C4 dataset. -
APTQ: Attention-aware Post-Training Mixed-Precision Quantization for Large La...
Large Language Models (LLMs) have greatly advanced the natural language processing paradigm. However, the high computational load and huge model sizes pose a grand challenge for... -
Confidence Calibration in Large Language Models
The dataset used in this study to analyze the self-assessment behavior of Large language models. -
Llama: Open and efficient foundation language models
The LLaMA dataset is a large language model dataset used in the paper. -
OPT-66B and Llama2-70B
The dataset used in the paper is OPT-66B, a large language model, and Llama2-70B, another large language model. -
How do large language models capture the ever-changing world knowledge?
This paper presents a review of recent advances in large language models' ability to capture ever-changing world knowledge.