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Gökhan Tür

3 accepted papers

2021

Language Model is all You Need: Natural Language Understanding as Question Answering

ICASSP 2021accepted

Different flavors of transfer learning have shown tremendous impact in advancing research and applications of machine learning. In this work we study the use of a certain family of transfer learning, where the target domain is mapped to the source domain. Specifically we map Natural Language Underst…

Cited by 0SourceScholar
2020

Joint Contextual Modeling for ASR Correction and Language Understanding

ICASSP 2020accepted

The quality of automatic speech recognition (ASR) is critical to Dialogue Systems as ASR errors propagate to and directly impact downstream tasks such as language understanding (LU). In this paper, we propose multi-task neural approaches to perform contextual language correction on ASR outputs joint…

Cited by 0SourceScholar
2018

(Almost) Zero-Shot Cross-Lingual Spoken Language Understanding

ICASSP 2018accepted

Spoken language understanding (SLU) is a component of goal-oriented dialogue systems that aims to interpret user's natural language queries in system's semantic representation format. While current state-of-the-art SLU approaches achieve high performance for English domains, the same is not true for…

Cited by 0SourceScholar