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IndoNLI: A Natural Language Inference Dataset for Indonesian

2021-10-27 · EMNLP 2021 11 · Rahmad Mahendra, Alham Fikri Aji, Samuel Louvan, Fahrurrozi Rahman, Clara Vania

We present IndoNLI, the first human-elicited NLI dataset for Indonesian. We adapt the data collection protocol for MNLI and collect nearly 18K sentence pairs annotated by crowd workers and experts. The expert-annotated data is used exclusively as a test set. It is designed to provide a challenging test-bed for Indonesian NLI by explicitly incorporating various linguistic phenomena such as numerical reasoning, structural changes, idioms, or temporal and spatial reasoning. Experiment results show that XLM-R outperforms other pre-trained models in our data. The best performance on the expert-annotated data is still far below human performance (13.4% accuracy gap), suggesting that this test set is especially challenging. Furthermore, our analysis shows that our expert-annotated data is more diverse and contains fewer annotation artifacts than the crowd-annotated data. We hope this dataset can help accelerate progress in Indonesian NLP research.

📄 PDF Abstract BibTeX arXiv:2110.14566

Code (1)

ir-nlp-csui/indonli 공식 구현

Tasks

Natural Language InferenceSentenceSpatial ReasoningXLM-R

Methods 이 논문이 사용한 방법론

Test 설명 없음
XLM-R XLM-R

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