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Comparar métodos

Examine os métodos selecionados lado a lado; as linhas que diferem ficam destacadas.

Análise do Discurso×Análise de Sentimento×Classificação de Texto×
ÁreaPesquisa qualitativaMineração de textoMineração de texto
FamíliaProcess / pipelineProcess / pipelineProcess / pipeline
Ano de origem1989 (Fairclough); 1987 (Potter & Wetherell)
Autor originalNorman Fairclough; Jonathan Potter and Margaret Wetherell
TipoMethodNLP text-classification taskSupervised NLP classification task
Fonte seminalFairclough, N. (1989). Language and power. Longman. link ↗Pang, B. & Lee, L. (2008). Opinion Mining and Sentiment Analysis. Foundations and Trends in Information Retrieval, 2(1-2), 1-135. DOI ↗Joachims, T. (1998). Text Categorization with Support Vector Machines: Learning with Many Relevant Features. ECML 1998. Lecture Notes in Computer Science, vol 1398. Springer. DOI ↗
Outros nomesDA, Critical Discourse Analysis, Discursive Analysisopinion mining, polarity detection, duygu analizitext categorization, document classification, topic classification, metin sınıflandırma
Relacionados234
ResumoDiscourse analysis is a qualitative research methodology that examines how language, communication, and power shape meaning, identity, and social reality. Developed across linguistics, sociology, and psychology (particularly by Norman Fairclough and Jonathan Potter), discourse analysis goes beyond content to analyze language use as a social practice that constitutes and reflects power relations, ideologies, and social structures.Sentiment analysis, also called opinion mining, is a natural-language-processing task that detects the emotional tone of text — typically classifying it as positive, negative, or neutral. It turns unstructured opinion text into structured, quantifiable polarity signals using one of three families of approaches: sentiment lexicons, trained machine-learning classifiers, or pretrained transformer models.Text classification, also called text categorization, is a supervised natural-language-processing task that automatically assigns documents to predefined categories. Building on the support-vector-machine approach to text categorization established by Joachims (1998) and consolidated in the text-mining literature by Aggarwal and Zhai (2012), it powers tasks such as spam detection and topic classification by learning from labelled examples.
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ScholarGateComparar métodos: Discourse Analysis · Sentiment Analysis · Text Classification. Recuperado em 2026-06-18 de https://scholargate.app/pt/compare