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Real-Time Continuous Tamil Dialect Speech Recognition and Summarization

  • 19-12-2024
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Abstract

The article discusses the challenges of Tamil dialect speech recognition and summarization due to the language's rich history and regional variations. It introduces a novel method using a new dataset and advanced models like Whisper Small, which are fine-tuned using techniques such as Parameter Efficient Fine-Tuning (PEFT) and Low-Rank Adapters (LoRA). The research demonstrates significant improvements in Word Error Rate (WER) and Character Error Rate (CER) across different Tamil dialects, highlighting the effectiveness of the proposed approach. Additionally, the article presents a summarization module that generates concise summaries from ASR transcripts and a dialect classifier to distinguish between different Tamil dialects. The performance analysis and error analysis sections provide insights into the model's strengths and areas for improvement, making this research a significant contribution to the field of speech recognition and summarization.

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Title
Real-Time Continuous Tamil Dialect Speech Recognition and Summarization
Authors
S. Saranya
B. Bharathi
S. Gomathy Dhanya
Aishwarya Krishnakumar
Publication date
19-12-2024
Publisher
Springer US
Published in
Circuits, Systems, and Signal Processing / Issue 4/2025
Print ISSN: 0278-081X
Electronic ISSN: 1531-5878
DOI
https://doi.org/10.1007/s00034-024-02950-5
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