CLDec 19, 2022

CiteBench: A benchmark for Scientific Citation Text Generation

arXiv:2212.09577v3142 citationsh-index: 81Has Code
Originality Synthesis-oriented
AI Analysis

This addresses the challenge of systematic evaluation in citation text generation for researchers, but it is incremental as it builds upon existing datasets and methods.

The authors tackled the lack of standardization in citation text generation by proposing CiteBench, a benchmark that unifies multiple datasets, and they evaluated strong baselines to provide insights for future research.

Science progresses by building upon the prior body of knowledge documented in scientific publications. The acceleration of research makes it hard to stay up-to-date with the recent developments and to summarize the ever-growing body of prior work. To address this, the task of citation text generation aims to produce accurate textual summaries given a set of papers-to-cite and the citing paper context. Due to otherwise rare explicit anchoring of cited documents in the citing paper, citation text generation provides an excellent opportunity to study how humans aggregate and synthesize textual knowledge from sources. Yet, existing studies are based upon widely diverging task definitions, which makes it hard to study this task systematically. To address this challenge, we propose CiteBench: a benchmark for citation text generation that unifies multiple diverse datasets and enables standardized evaluation of citation text generation models across task designs and domains. Using the new benchmark, we investigate the performance of multiple strong baselines, test their transferability between the datasets, and deliver new insights into the task definition and evaluation to guide future research in citation text generation. We make the code for CiteBench publicly available at https://github.com/UKPLab/citebench.

Code Implementations1 repo
Foundations

The foundational work for this paper's niche, ranked by how specifically the neighbourhood builds on it — not by global fame.

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