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Information Extraction from Text Based on Semantic Inferentialism
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Information Extraction from Text Based on Semantic Inferentialism
Vladia Pinheiro23 , Tarcisio Pequeno24 , Vasco Furtado24, 25 and Douglas Nogueira24 
| (23) |
Departamento de Ciências da Computação, Universidade Federal do Ceará, Campus do Pici-UFC, Fortaleza, Ceará, Brasil |
| (24) |
Mestrado em Informática Aplicada, Universidade de Fortaleza (UNIFOR), Av. Washington Soares, 1321, Fortaleza, Ceará, Brasil |
| (25) |
ETICE – Empresa de Tecnologia da Informação do Ceará, Av. Pontes Vieira 220, Fortaleza, Ceará, Brasil |
Abstract
One of the growing needs of information extraction (IE) from text is that the IE system must be able to perform enriched inferences
in order to discover and extract information. We argue that one reason for the current limitation of the approaches that use
semantics for that is that they are based on ontologies that express the characteristics of things represented by names, and
seek to draw inferences and to extract information based on such characteristics, disregarding the linguistic praxis (i.e.
the uses of the natural language). In this paper, we describe a generic architecture for IE systems based on Semantic Inferentialism.
We propose a model that seeks to express the inferential power of concepts and how these concepts, combined in sentence structures,
contribute to the inferential power of sentences. We demonstrate the validity of the approach and evaluate it by deploying
an application for extracting information about crime reported in on line newspapers.
Keywords Information Extraction - Textual Inference - Semantic Analysis
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