Kobyshev Kirill Serveevich (postgraduate student, Peter the Great St. Petersburg Polytechnic University)
Molodyakov Sergey Aleksandrovich (Doctor of technical Sciences, Professor, Peter the Great St. Petersburg Polytechnic University)
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Now, searching for information in unstructured data presented in the form of text is a non-trivial task. Text data may be casted to structured data with automatic relation extraction algorithms. Structured text representation allows to use structured data advantages: explainability of found facts, simplicity of fact search, possibility of data access acceleration mechanisms using. In this paper the following relation extraction approaches were considered and compared: semi-automatic approach, weakly supervised learning, supervised learning, distantly supervised learning, unsupervised learning.
Keywords:relation extraction, structured data, computational linguistics, knowledge extraction, text data processing.
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Citation link: Kobyshev K. S., Molodyakov S. A. Analysis and classification of algorithms for relation extraction from text data // Современная наука: актуальные проблемы теории и практики. Серия: Естественные и Технические Науки. -2021. -№05. -С. 71-79 DOI 10.37882/2223-2966.2021.05.15 |
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