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20172021
most citedTopic-based Evaluation for Conversational Bots

41 citations · 43 across the 2 of their papers we have counts for

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8 papers · 1 filter

cs.CL20212 cited

Do as I mean, not as I say: Sequence Loss Training for Spoken Language Understanding

Milind Rao, Pranav Dheram, Gautam Tiwari +4

Spoken language understanding (SLU) systems extract transcriptions, as well as semantics of intent or named entities from speech, and are essential components of voice activated sy…

cs.CL2020

Multi-task Language Modeling for Improving Speech Recognition of Rare Words

Chao-Han Huck Yang, Linda Liu, Ankur Gandhe +4

End-to-end automatic speech recognition (ASR) systems are increasingly popular due to their relative architectural simplicity and competitive performance. However, even though the…

cs.CL2020

Speech To Semantics: Improve ASR and NLU Jointly via All-Neural Interfaces

Milind Rao, Anirudh Raju, Pranav Dheram +2

We consider the problem of spoken language understanding (SLU) of extracting natural language intents and associated slot arguments or named entities from speech that is primarily…

cs.CL2019

Scalable Multi Corpora Neural Language Models for ASR

Anirudh Raju, Denis Filimonov, Gautam Tiwari +2

Neural language models (NLM) have been shown to outperform conventional n-gram language models by a substantial margin in Automatic Speech Recognition (ASR) and other tasks. There…

cs.CL2018

Data Augmentation for Robust Keyword Spotting under Playback Interference

Anirudh Raju, Sankaran Panchapagesan, Xing Liu +2

Accurate on-device keyword spotting (KWS) with low false accept and false reject rate is crucial to customer experience for far-field voice control of conversational agents. It is…

cs.CL2018

Contextual Language Model Adaptation for Conversational Agents

Anirudh Raju, Behnam Hedayatnia, Linda Liu +5

Statistical language models (LM) play a key role in Automatic Speech Recognition (ASR) systems used by conversational agents. These ASR systems should provide a high accuracy under…