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MASSIVE: A 1M-Example Multilingual Natural Language Understanding Dataset with 51 Typologically-Diverse Languages

18 April 2022
Jack G. M. FitzGerald
C. Hench
Charith Peris
Scott Mackie
Kay Rottmann
A. Sánchez
Aaron Nash
Liam Urbach
Vishesh Kakarala
Richa Singh
Swetha Ranganath
Laurie Crist
Misha Britan
Wouter Leeuwis
Gökhan Tür
Premkumar Natarajan
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Abstract

We present the MASSIVE dataset--Multilingual Amazon Slu resource package (SLURP) for Slot-filling, Intent classification, and Virtual assistant Evaluation. MASSIVE contains 1M realistic, parallel, labeled virtual assistant utterances spanning 51 languages, 18 domains, 60 intents, and 55 slots. MASSIVE was created by tasking professional translators to localize the English-only SLURP dataset into 50 typologically diverse languages from 29 genera. We also present modeling results on XLM-R and mT5, including exact match accuracy, intent classification accuracy, and slot-filling F1 score. We have released our dataset, modeling code, and models publicly.

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