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5 months ago

EVI: Multilingual Spoken Dialogue Tasks and Dataset for Knowledge-Based Enrolment, Verification, and Identification

Georgios P. Spithourakis; Ivan Vulić; Michał Lis; Iñigo Casanueva; Paweł Budzianowski

EVI: Multilingual Spoken Dialogue Tasks and Dataset for Knowledge-Based Enrolment, Verification, and Identification

Abstract

Knowledge-based authentication is crucial for task-oriented spoken dialogue systems that offer personalised and privacy-focused services. Such systems should be able to enrol (E), verify (V), and identify (I) new and recurring users based on their personal information, e.g. postcode, name, and date of birth. In this work, we formalise the three authentication tasks and their evaluation protocols, and we present EVI, a challenging spoken multilingual dataset with 5,506 dialogues in English, Polish, and French. Our proposed models set the first competitive benchmarks, explore the challenges of multilingual natural language processing of spoken dialogue, and set directions for future research.

Code Repositories

PolyAI-LDN/evi-paper
Official
Mentioned in GitHub

Benchmarks

BenchmarkMethodologyMetrics
speaker-identification-on-evi-en-gb-1Fuzzy Retrieval
Top-1 (%): 67.77
speaker-identification-on-evi-fr-frFuzzy Retrieval
Top-1 (%): 80.83
speaker-identification-on-evi-pl-plFuzzy Retrieval
Top-1 (%): 95.13

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EVI: Multilingual Spoken Dialogue Tasks and Dataset for Knowledge-Based Enrolment, Verification, and Identification | Papers | HyperAI