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Optimal Transport Distillation for Robust Cross-Lingual Retrieval Across Typological Differences

Authors: Assignee Research;

Optimal Transport Distillation for Robust Cross-Lingual Retrieval Across Typological Differences

Abstract

Benefiting from transformer-based pre-trained language models, neural ranking models have made significant progress. More recently, the advent of multilingual pre-trained language models provides great support for designing neural cross-lingual retrieval models. However, due to unbalanced pre-training data in different languages, multilingual language models have already shown a performance gap between high and low-resource languages in many downstream tasks. And cross-lingual retrieval models built on such pre-trained models can inherit language bias, leading to suboptimal result for low-resoResearch goal: Does applying optimal transport distillation improve the robustness of cross-lingual retrieval models against language typology differences when evaluated on the Arabic and Swahili subsets of XQuAD?Autonomous synthesis report generated by Assignee Research. Tribunal consensus score: 9.3/10.

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