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Turan Gojayev

3 accepted papers

2023

Sharing Encoder Representations across Languages, Domains and Tasks in Large-Scale Spoken Language Understanding

ACL 2023industry

Leveraging representations from pre-trained transformer-based encoders achieves state-of-the-art performance on numerous NLP tasks. Larger encoders can improve accuracy for spoken language understanding (SLU) but are challenging to use given the inference latency constraints of online systems (espec…

Cited by 0SourcePDFScholar
2022

Knowledge Distillation Transfer Sets and their Impact on Downstream NLU Tasks

EMNLP 2022industry

Teacher-student knowledge distillation is a popular technique for compressing today’s prevailing large language models into manageable sizes that fit low-latency downstream applications. Both the teacher and the choice of transfer set used for distillation are crucial ingredients in creating a high…

Cited by 5SourcePDFScholar
2021

Continuous Model Improvement for Language Understanding with Machine Translation

NAACL 2021industry

Scaling conversational personal assistants to a multitude of languages puts high demands on collecting and labelling data, a setting in which cross-lingual learning techniques can help to reconcile the need for well-performing Natural Language Understanding (NLU) with a desideratum to support many l…

Cited by 4SourcePDFScholar