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Papers/SCROLLS: Standardized CompaRison Over Long Language Sequen...

SCROLLS: Standardized CompaRison Over Long Language Sequences

Uri Shaham, Elad Segal, Maor Ivgi, Avia Efrat, Ori Yoran, Adi Haviv, Ankit Gupta, Wenhan Xiong, Mor Geva, Jonathan Berant, Omer Levy

2022-01-10Question AnsweringNatural Language InferenceLong-range modeling
PaperPDFCode(official)Code

Abstract

NLP benchmarks have largely focused on short texts, such as sentences and paragraphs, even though long texts comprise a considerable amount of natural language in the wild. We introduce SCROLLS, a suite of tasks that require reasoning over long texts. We examine existing long-text datasets, and handpick ones where the text is naturally long, while prioritizing tasks that involve synthesizing information across the input. SCROLLS contains summarization, question answering, and natural language inference tasks, covering multiple domains, including literature, science, business, and entertainment. Initial baselines, including Longformer Encoder-Decoder, indicate that there is ample room for improvement on SCROLLS. We make all datasets available in a unified text-to-text format and host a live leaderboard to facilitate research on model architecture and pretraining methods.

Results

TaskDatasetMetricValueModel
Language ModellingSCROLLSAvg.29.16LED Base
Language ModellingSCROLLSCNLI71.5LED Base
Language ModellingSCROLLSNrtv18.5LED Base
Language ModellingSCROLLSQspr26.6LED Base
Language ModellingSCROLLSAvg.29.01BART Base
Language ModellingSCROLLSCNLI77.4BART Base
Language ModellingSCROLLSNrtv15.4BART Base
Language ModellingSCROLLSQspr26.3BART Base
Language ModellingSCROLLSAvg.19.35Naive
Language ModellingSCROLLSCNLI66Naive
Language ModellingSCROLLSNrtv1.5Naive
Language ModellingSCROLLSQspr3.4Naive

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