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| Procena lingvističke prihvatljivosti× | TF-IDF× | |
|---|---|---|
| Oblast | Rudarenje teksta | Rudarenje teksta |
| Porodica | Process / pipeline | Process / pipeline |
| Godina nastanka≠ | 1957 (theory); 2019 (neural benchmark — CoLA) | 1988 |
| Tvorac≠ | Noam Chomsky (theoretical foundations, 1957); Warstadt, Singh & Bowman (neural formulation, 2019) | Salton & Buckley |
| Tip≠ | NLP binary/continuous classification task | Text vectorization / term-weighting scheme |
| Temeljni izvor≠ | Warstadt, A., Singh, A. & Bowman, S. (2019). Neural Network Acceptability Judgments. Transactions of the Association for Computational Linguistics, 7, 625–641. DOI ↗ | Salton, G. & Buckley, C. (1988). Term-weighting approaches in automatic text retrieval. Information Processing & Management, 24(5), 513-523. DOI ↗ |
| Drugi nazivi≠ | grammaticality judgment, acceptability judgment, CoLA task, Dilbilgisel Kabul Edilebilirlik Değerlendirme | term weighting, tf-idf weighting, TF-IDF Vektörizasyonu |
| Srodne≠ | 4 | 3 |
| Sažetak≠ | Linguistic acceptability assessment is a natural-language-processing task that automatically estimates whether a sentence would be judged grammatically acceptable by a native speaker of the target language. Grounded in Chomsky's (1957) distinction between grammatical and ungrammatical utterances, the task was formalised as a neural benchmark by Warstadt, Singh and Bowman (2019) through the Corpus of Linguistic Acceptability (CoLA). It is used in language-learning research, linguistics studies, and quality auditing of natural-language-generation (NLG) systems. | TF-IDF, introduced by Salton and Buckley (1988), is a term-weighting scheme that scores each word in a document by how often it appears there and how rare it is across the whole collection. It turns raw text into weighted document vectors, giving high weight to terms that are frequent in one document but uncommon elsewhere. |
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