Named Entity Recognition for Address Extraction in Speech-to-Text Transcriptions Using Synthetic Data
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arXiv
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| Autores principales: | , , |
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| Formato: | Preprint |
| Publicado: |
2024
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| _version_ | 1866913227530567680 |
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| author | Lajčinová, Bibiána Valábek, Patrik Spišiak, Michal |
| author_facet | Lajčinová, Bibiána Valábek, Patrik Spišiak, Michal |
| contents | This paper introduces an approach for building a Named Entity Recognition (NER) model built upon a Bidirectional Encoder Representations from Transformers (BERT) architecture, specifically utilizing the SlovakBERT model. This NER model extracts address parts from data acquired from speech-to-text transcriptions. Due to scarcity of real data, a synthetic dataset using GPT API was generated. The importance of mimicking spoken language variability in this artificial data is emphasized. The performance of our NER model, trained solely on synthetic data, is evaluated using small real test dataset. |
| format | Preprint |
| id |
arxiv_https___arxiv_org_abs_2402_05545 |
| institution | arXiv |
| publishDate | 2024 |
| record_format | arxiv |
| spellingShingle | Named Entity Recognition for Address Extraction in Speech-to-Text Transcriptions Using Synthetic Data Lajčinová, Bibiána Valábek, Patrik Spišiak, Michal Computation and Language I.2.7 This paper introduces an approach for building a Named Entity Recognition (NER) model built upon a Bidirectional Encoder Representations from Transformers (BERT) architecture, specifically utilizing the SlovakBERT model. This NER model extracts address parts from data acquired from speech-to-text transcriptions. Due to scarcity of real data, a synthetic dataset using GPT API was generated. The importance of mimicking spoken language variability in this artificial data is emphasized. The performance of our NER model, trained solely on synthetic data, is evaluated using small real test dataset. |
| title | Named Entity Recognition for Address Extraction in Speech-to-Text Transcriptions Using Synthetic Data |
| topic | Computation and Language I.2.7 |
| url | https://arxiv.org/abs/2402.05545 |