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Dictionary-Based Text Analysis×Sentiment Analysis in Communication×
ОбластьCommunicationCommunication
СемействоProcess / pipelineProcess / pipeline
Год появления20032010
Автор методаLexicon tradition (Pennebaker LIWC; General Inquirer)Adapted into communication research from NLP / opinion mining
ТипWord-count text measurement against predefined category dictionariesAutomated classification of message valence/tone
Основополагающий источникPennebaker, J. W., Mehl, M. R., & Niederhoffer, K. G. (2003). Psychological aspects of natural language use: Our words, our selves. Annual Review of Psychology, 54, 547–577. DOI ↗Tausczik, Y. R., & Pennebaker, J. W. (2010). The psychological meaning of words: LIWC and computerized text analysis methods. Journal of Language and Social Psychology, 29(1), 24–54. DOI ↗
Другие названияLexicon-based text analysis, Word-count text analysis, Dictionary method for content analysis, Sözlük Tabanlı Metin AnaliziOpinion mining in communication, Tone analysis, Media sentiment analysis, İletişimde Duygu Analizi
Связанные45
СводкаDictionary-based text analysis measures concepts in text by counting how often words belonging to predefined category lists — dictionaries — appear in each document. It is the workhorse lexicon method behind tools like LIWC and the General Inquirer, prized for its transparency and scalability: a category score is simply the share of a document's words that match the category's word list.Sentiment analysis is the automated estimation of the valence — positive, negative, or neutral tone — of communication messages, adapted from natural-language processing into a core measurement technique for media and communication research. It lets scholars quantify the tone of news coverage, the affect of social-media discourse, or audience reactions across corpora far too large for hand coding, while treating tone as a measurable, validatable construct.
ScholarGateНабор данных
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  2. 2 Источники
  3. PUBLISHED
  1. v1
  2. 2 Источники
  3. PUBLISHED

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ScholarGateСравнение методов: Dictionary-Based Text Analysis · Sentiment Analysis in Communication. Получено 2026-06-24 из https://scholargate.app/ru/compare