The Best of Both Worlds: Combining Human and Machine Translations for Multilingual Semantic Parsing with Active Learning
Zhuang Li, Lizhen Qu, Philip R. Cohen, Raj Tumuluri, Gholamreza Haffari
摘要
Multilingual semantic parsing aims to leverage the knowledge from the high-resource languages to improve low-resource semantic parsing, yet commonly suffers from the data imbalance problem. Prior works propose to utilize the translations by either humans or machines to alleviate such issues. However, human translations are expensive, while machine translations are cheap but prone to error and bias. In this work, we propose an active learning approach that exploits the strengths of both human and machine translations by iteratively adding small batches of human translations into the machine-translated training set. Besides, we propose novel aggregated acquisition criteria that help our active learning method select utterances to be manually translated. Our experiments demonstrate that an ideal utterance selection can significantly reduce the error and bias in the translated data, resulting in higher parser accuracies than the parsers merely trained on the machine-translated data.
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它引用的顶会 Paper4
- MAUVE: Measuring the Gap Between Neural Text and Human Text using Divergence FrontiersKrishna Pillutla, Swabha Swayamdipta, Rowan Zellers, John Thickstun 等NeurIPS 2021 · 被引用 606 次
- AutoQA: From Databases To QA Semantic Parsers With Only Synthetic Training DataSilei Xu, Sina J. Semnani, Giovanni Campagna, Monica S. LamEMNLP 2020 · 被引用 33 次
- Merging Weak and Active Supervision for Semantic ParsingAnsong Ni, Pengcheng Yin, Graham NeubigAAAI 2020 · 被引用 17 次
- Localizing Open-Ontology QA Semantic Parsers in a Day Using Machine TranslationMehrad Moradshahi, Giovanni Campagna, Sina J. Semnani, Silei Xu 等EMNLP 2020
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