Danielle Berry
2018
The Alexa Meaning Representation Language
Thomas Kollar
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Danielle Berry
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Lauren Stuart
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Karolina Owczarzak
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Tagyoung Chung
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Lambert Mathias
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Michael Kayser
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Bradford Snow
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Spyros Matsoukas
Proceedings of the 2018 Conference of the North American Chapter of the Association for Computational Linguistics: Human Language Technologies, Volume 3 (Industry Papers)
This paper introduces a meaning representation for spoken language understanding. The Alexa meaning representation language (AMRL), unlike previous approaches, which factor spoken utterances into domains, provides a common representation for how people communicate in spoken language. AMRL is a rooted graph, links to a large-scale ontology, supports cross-domain queries, fine-grained types, complex utterances and composition. A spoken language dataset has been collected for Alexa, which contains ∼20k examples across eight domains. A version of this meaning representation was released to developers at a trade show in 2016.
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Co-authors
- Thomas Kollar 1
- Lauren Stuart 1
- Karolina Owczarzak 1
- Tagyoung Chung 1
- Lambert Mathias 1
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