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Distributional Semantics

The research programme that operationalises the Distributional Hypothesis: represent word meaning by vectors derived from co-occurrence statistics over large corpora, so that geometric proximity reflects semantic similarity. Classical methods build a word–context co-occurrence matrix and reduce it (e.g. LSA / latent semantic analysis); neural methods learn dense Word Embeddings predictively. Distributional semantics gives a usage-grounded, learnable account of meaning that contrasts with symbolic/definitional approaches and underpins how language models encode lexical meaning.

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