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latent language
Latent language refers to an internal pivot language that a multilingual neural language model utilizes to represent and process semantic information within its intermediate layers before generating text in a designated target language. In transformer-based architectures trained on multilingual data, hidden representations in middle layers often project inputs from various languages into an abstract conceptual space structured predominantly around a dominant training language, such as English. The model subsequently transforms these internal states into the vocabulary space of the desired output language in later layers. This intermediate representation enables knowledge transfer and cross-lingual generalization across diverse languages, while also potentially imparting the linguistic and cultural characteristics of the dominant internal language onto the overall behavior of the system.
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