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Extrakce informací×Sémantická podobnost×
OborDolování textuDolování textu
RodinaProcess / pipelineProcess / pipeline
Rok vzniku2019
TvůrceNils Reimers & Iryna Gurevych (Sentence-BERT)
TypNLP structured-information taskNLP text-comparison task
Původní zdrojCowie, J. & Lehnert, W. (1996). Information Extraction. Communications of the ACM. DOI ↗Reimers, N. & Gurevych, I. (2019). Sentence-BERT: Sentence Embeddings using Siamese BERT-Networks. EMNLP. link ↗
Další názvyIE, structured information extraction, Bilgi Çıkarma (Information Extraction)semantic textual similarity, text similarity, Anlamsal Benzerlik Analizi
Příbuzné44
ShrnutíInformation extraction (IE) is a natural-language-processing task that converts unstructured text into structured information — such as events, relations, and attributes — so that facts buried in free-form documents become machine-readable records. The task was consolidated in early surveys by Cowie and Lehnert (1996) and later by Grishman (2012).Semantic similarity analysis measures how close in meaning two texts are, rather than how many words they share on the surface. Building on the Sentence-BERT work of Reimers and Gurevych (2019), it represents each text as a vector and compares those vectors so that paraphrases score high even when their wording differs.
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ScholarGatePorovnat metody: Information Extraction · Semantic Similarity. Získáno 2026-06-18 z https://scholargate.app/cs/compare