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  4. On Improving Error Resilience of Neural End-to-End Speech Coders
 
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2024
Conference Paper
Title

On Improving Error Resilience of Neural End-to-End Speech Coders

Abstract
Error resilient tools like Packet Loss Concealment (PLC) and Forward Error Correction (FEC) are essential to maintain a reliable speech communication for applications like Voice over Internet Protocol (VoIP), where packets are frequently delayed and lost. In recent times, end-to-end neural speech codecs have seen a significant rise, due to their ability to transmit speech signal at low bitrates but few considerations were made about their error resilience in a real system. Recently introduced Neural End-to-End Speech Codec (NESC) can reproduce high quality natural speech at low bitrates. We extend its robustness to packet losses by adding a low complexity network to predict the codebook indices in latent space. Furthermore, we propose a method to add an in-band FEC at an additional bitrate of 0.8 kbps. Both subjective and objective assessment indicate the effectiveness of proposed methods, and demonstrate that coupling PLC and FEC provide significant robustness against packet losses.
Author(s)
Gupta, Kishan
Fraunhofer-Institut für Integrierte Schaltungen IIS  
Pia, Nicola
Fraunhofer-Institut für Integrierte Schaltungen IIS  
Korse, Srikanth
Fraunhofer-Institut für Integrierte Schaltungen IIS  
Brendel, Andreas
Fraunhofer-Institut für Integrierte Schaltungen IIS  
Fuchs, Guillaume  
Fraunhofer-Institut für Integrierte Schaltungen IIS  
Multrus, Markus  
Fraunhofer-Institut für Integrierte Schaltungen IIS  
Mainwork
Proceedings of the Annual Conference of the International Speech Communication Association Interspeech
Conference
25th Interspeech Conferece 2024
DOI
10.21437/Interspeech.2024-1061
Language
English
Fraunhofer-Institut für Integrierte Schaltungen IIS  
Keyword(s)
  • Deep Neural Networks (DNN)

  • Forward Error Correction (FEC)

  • Neural Codec

  • Packet Loss Concealment (PLC)

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