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5 months ago

Adversarial Alignment of Multilingual Models for Extracting Temporal Expressions from Text

Lukas Lange; Anastasiia Iurshina; Heike Adel; Jannik Strötgen

Adversarial Alignment of Multilingual Models for Extracting Temporal Expressions from Text

Abstract

Although temporal tagging is still dominated by rule-based systems, there have been recent attempts at neural temporal taggers. However, all of them focus on monolingual settings. In this paper, we explore multilingual methods for the extraction of temporal expressions from text and investigate adversarial training for aligning embedding spaces to one common space. With this, we create a single multilingual model that can also be transferred to unseen languages and set the new state of the art in those cross-lingual transfer experiments.

Benchmarks

BenchmarkMethodologyMetrics
temporal-tagging-on-basque-timebankLange et al.
F1: 47.87
temporal-tagging-on-catalan-timebank-1-0Lange et al.
F1: 64.21
temporal-tagging-on-french-timebankLange et al.
F1: 62.58
temporal-tagging-on-krautsLange et al.
F1: 66.53
temporal-tagging-on-spanish-timebank-1-0Lange et al.
F1: 79.55
temporal-tagging-on-tempeval-3Lange et al.
F1: 74.8
temporal-tagging-on-timebankptLange et al.
F1: 75.47

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Adversarial Alignment of Multilingual Models for Extracting Temporal Expressions from Text | Papers | HyperAI