conference-paper
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Representation of Word Meaning in the Intermediate Projection Layer of a Neural Language Model
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Abstract
Performance in language modelling has been significantly improved by training recurrent neural networks on large corpora. This progress has come at the cost of interpretability and an understanding of how these architectures function, making principled development of better language models more difficult. We look inside a state-of-the-art neural language model to analyse how this model represents high-level lexico-semantic information.
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Publication details
- DOI
- 10.18653/v1/w18-5449
- OpenAlex
- W2909124124
- Document type
- conference-paper
- Language
- EN
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