SciRIFF: A Resource to Enhance Language Model Instruction-Following over Scientific Literature
Wadden, David, Shi, Kejian, Morrison, Jacob, Naik, Aakanksha, Singh, Shruti, Barzilay, Nitzan, Lo, Kyle, Hope, Tom, Soldaini, Luca, Shen, Shannon Zejiang, Downey, Doug, Hajishirzi, Hannaneh, Cohan, Arman
–arXiv.org Artificial Intelligence
We present SciRIFF (Scientific Resource for Instruction-Following and Finetuning), a dataset of 137K instruction-following demonstrations for 54 tasks covering five essential scientific literature understanding capabilities: information extraction, summarization, question answering, claim verification, and classification. SciRIFF demonstrations are notable for their long input contexts, detailed task specifications, and complex structured outputs. While instruction-following resources are available in specific domains such as clinical medicine and chemistry, SciRIFF is the first dataset focused on extracting and synthesizing information from research literature across a wide range of scientific fields. To demonstrate the utility of SciRIFF, we develop a sample-efficient strategy to adapt a general instruction-following model for science by performing additional finetuning on a mix of general-domain and SciRIFF demonstrations. In evaluations on nine held-out scientific tasks, our model -- called SciTulu -- improves over a strong LLM baseline by 28.1% and 6.5% at the 7B and 70B scales respectively, while maintaining general instruction-following performance within 2% of the baseline. We are optimistic that SciRIFF will facilitate the development and evaluation of LLMs to help researchers navigate the ever-growing body of scientific literature. We release our dataset, model checkpoints, and data processing and evaluation code to enable further research.
arXiv.org Artificial Intelligence
Jun-18-2024
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