2014
DOI: 10.1016/j.csl.2014.04.004
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Paraphrastic language models

Abstract: In natural languages multiple word sequences can represent the same underlying meaning. Only modelling the observed surface word sequence can result in poor context coverage, for example, when using n-gram language models (LM). To handle this issue, this paper presents a novel form of language model, the paraphrastic LM. A phrase level transduction model that is statistically learned from standard text data is used to generate paraphrase variants. LM probabilities are then estimated by maximizing their margina… Show more

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Cited by 11 publications
(35 citation statements)
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“…This advantage can be exploited by many forms of LMs that do not explicitly capture the paraphrastic variability in natural languages. These models include, and are not restricted to, back-off n-gram LMs as investigated in previous research [18,19,20].…”
Section: Paraphrastic Counts Smoothingmentioning
confidence: 99%
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“…This advantage can be exploited by many forms of LMs that do not explicitly capture the paraphrastic variability in natural languages. These models include, and are not restricted to, back-off n-gram LMs as investigated in previous research [18,19,20].…”
Section: Paraphrastic Counts Smoothingmentioning
confidence: 99%
“…Weighted finite state transducers (WFST) [24] can be can used to efficiently generate paraphrases [18]. For each training data sentence, the paraphrase word lattice T W ′ is generated using a sequence of WFST composition operations, before being projected onto the word sequence level and compressed via the determinization operation.…”
Section: Paraphrase Lattice Generationmentioning
confidence: 99%
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