Building Dialogue Understanding Models for Low-resource Language Indonesian from Scratch

October 24, 2024 ยท Declared Dead ยท ๐Ÿ› ACM Trans. Asian Low Resour. Lang. Inf. Process.

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Authors Donglin Di, Weinan Zhang, Yue Zhang, Fanglin Wang arXiv ID 2410.18430 Category cs.CL: Computation & Language Citations 2 Venue ACM Trans. Asian Low Resour. Lang. Inf. Process. Last Checked 5 months ago
Abstract
Making use of off-the-shelf resources of resource-rich languages to transfer knowledge for low-resource languages raises much attention recently. The requirements of enabling the model to reach the reliable performance lack well guided, such as the scale of required annotated data or the effective framework. To investigate the first question, we empirically investigate the cost-effectiveness of several methods to train the intent classification and slot-filling models for Indonesia (ID) from scratch by utilizing the English data. Confronting the second challenge, we propose a Bi-Confidence-Frequency Cross-Lingual transfer framework (BiCF), composed by ``BiCF Mixing'', ``Latent Space Refinement'' and ``Joint Decoder'', respectively, to tackle the obstacle of lacking low-resource language dialogue data. Extensive experiments demonstrate our framework performs reliably and cost-efficiently on different scales of manually annotated Indonesian data. We release a large-scale fine-labeled dialogue dataset (ID-WOZ) and ID-BERT of Indonesian for further research.
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