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SPRING-INX-DATA2VEC-AQC-ASSAMESE

Automatic Speech Recognition (ASR) model for speech recognition, processing audio and transcribing spoken content into text.The inference code, installation requirements, and usage instructions are available in the SPRING Lab, IIT Madras GitHub repository: https://github.com/Speech-Lab-IITM/Fairseq-Inference

About Model

Data2vec-aqc is a self-supervised learning (SSL) model for speech representation learning, specifically designed to improve Automatic Speech Recognition (ASR) in low-resource settings. It is built using the Fairseq toolkit and extends the original data2vec framework by introducing three key modules: a quantizer (similar to wav2vec 2.0), a clustering module (from ccc-wav2vec 2.0), and a cross-contrastive loss mechanism. The model uses a Transformer-based architecture, consistent with data2vec, and operates in a teacher-student training setup. The student network processes randomly augmented versions of audio samples, while the teacher network (an exponentially moving average of the student) provides target representations. The student learns to predict the teacher’s contextualised latent representations, enabling robust feature learning.

SPRING-INX-DATA2VEC-AQC-ASSAMESE

Metadata Metadata

Attribution 4.0 International (CC BY- 4.0)

SPRING LAB IITM

Fine-Tuned Model

PyTorch

Open

Science, Technology and Research

09/07/26 06:09:04

Gokulapriya

3.52 GB

SPRING_INX_Assamese_dict.txt ( 1.17 KB )


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Activity Overview Activity Overview

  • Downloads0
  • Downloads 0
  • File Size 3.52 GB
  • Views 7

Tags Tags

  • Assamese
  • ssl
  • IITM
  • spring_lab
  • Data2vec_aqc
  • SSL_finetunning
  • Low-resource languages

License Control License Control

Attribution 4.0 International (CC BY- 4.0)

Version Control Version Control

FolderVersion 1(3.52 GB)
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    • text/plain
      SPRING_INX_Assamese_dict.txt
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      SPRING_INX_data2vec_aqc_Assamese.pt

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