CLUE: A Chinese language understanding evaluation benchmark
arXiv preprint arXiv:2004.05986, 2020•arxiv.org
The advent of natural language understanding (NLU) benchmarks for English, such as
GLUE and SuperGLUE allows new NLU models to be evaluated across a diverse set of
tasks. These comprehensive benchmarks have facilitated a broad range of research and
applications in natural language processing (NLP). The problem, however, is that most such
benchmarks are limited to English, which has made it difficult to replicate many of the
successes in English NLU for other languages. To help remedy this issue, we introduce the …
GLUE and SuperGLUE allows new NLU models to be evaluated across a diverse set of
tasks. These comprehensive benchmarks have facilitated a broad range of research and
applications in natural language processing (NLP). The problem, however, is that most such
benchmarks are limited to English, which has made it difficult to replicate many of the
successes in English NLU for other languages. To help remedy this issue, we introduce the …
The advent of natural language understanding (NLU) benchmarks for English, such as GLUE and SuperGLUE allows new NLU models to be evaluated across a diverse set of tasks. These comprehensive benchmarks have facilitated a broad range of research and applications in natural language processing (NLP). The problem, however, is that most such benchmarks are limited to English, which has made it difficult to replicate many of the successes in English NLU for other languages. To help remedy this issue, we introduce the first large-scale Chinese Language Understanding Evaluation (CLUE) benchmark. CLUE is an open-ended, community-driven project that brings together 9 tasks spanning several well-established single-sentence/sentence-pair classification tasks, as well as machine reading comprehension, all on original Chinese text. To establish results on these tasks, we report scores using an exhaustive set of current state-of-the-art pre-trained Chinese models (9 in total). We also introduce a number of supplementary datasets and additional tools to help facilitate further progress on Chinese NLU. Our benchmark is released at https://www.CLUEbenchmarks.com
arxiv.org
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