Multimodal Robustness for Neural Machine Translation
Yuting Zhao, Ioan Calapodescu
摘要
In this paper, we look at the case of a Generic text-to-text NMT model that has to deal with data coming from various modalities, like speech, images, or noisy text extracted from the web. We propose a two-step method, based on composable adapters, to deal with this problem of Multimodal Robustness. In the first step, we separately learn domain adapters and modality specific adapters, to deal with noisy input coming from various sources: ASR, OCR, or noisy text (UGC). In a second step, we combine these components at runtime via dynamic routing or, when the source of noise is unknown, via two new transfer learning mechanisms (Fast Fusion and Multi Fusion). We show that our method provides a flexible, state-of-the-art, architecture able to deal with noisy multimodal inputs.
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它引用的顶会 Paper6
- ParaCrawl: Web-Scale Acquisition of Parallel CorporaMarta Bañón, Pinzhen Chen, Barry Haddow, Kenneth Heafield 等ACL 2020 · 被引用 132 次
- AdvAug: Robust Adversarial Augmentation for Neural Machine TranslationYong Cheng, Lu Jiang, Wolfgang Macherey, Jacob EisensteinACL 2020 · 被引用 105 次
- Conditionally Adaptive Multi-Task Learning: Improving Transfer Learning in NLP Using Fewer Parameters & Less DataJonathan Pilault, Amine Elhattami, Christopher J. PalICLR 2021 · 被引用 105 次
- MAD-X: An Adapter-Based Framework for Multi-Task Cross-Lingual TransferJonas Pfeiffer, Ivan Vulic, Iryna Gurevych, Sebastian RuderEMNLP 2020 · 被引用 36 次
- UDapter: Language Adaptation for Truly Universal Dependency ParsingAhmet Üstün, Arianna Bisazza, Gosse Bouma, Gertjan van NoordEMNLP 2020 · 被引用 10 次
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