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Identifikácia jazyka (LID)×N-gramový jazykový model×Analýza sentimentu×
OdborDolovanie textuDolovanie textuDolovanie textu
RodinaProcess / pipelineProcess / pipelineProcess / pipeline
Rok vzniku
Tvorca
TypNLP text-classification taskStatistical language modelNLP text-classification task
Pôvodný zdrojLui, M. & Baldwin, T. (2012). langid.py: An Off-the-shelf Language Identification Tool. Proceedings of the ACL 2012 System Demonstrations. link ↗Jurafsky, D. & Martin, J.H. (2023). Speech and Language Processing, 3rd ed. link ↗Pang, B. & Lee, L. (2008). Opinion Mining and Sentiment Analysis. Foundations and Trends in Information Retrieval, 2(1-2), 1-135. DOI ↗
Ďalšie názvylanguage detection, LID, Dil Tanımlama (Language Identification)n-gram model, statistical language model, N-gram Dil Modeliopinion mining, polarity detection, duygu analizi
Príbuzné443
ZhrnutieLanguage identification is a natural-language-processing task that automatically detects which language a piece of text is written in. Building on off-the-shelf tools such as langid.py (Lui & Baldwin, 2012) and the efficient classifiers of Joulin et al. (2017), it is widely used to preprocess and filter multilingual data sets.An n-gram language model is a statistical model that predicts the probability of the next word by looking only at the previous n−1 words. Described in detail by Jurafsky and Martin (Speech and Language Processing), it provides foundational infrastructure for text generation, spelling correction, and speech recognition.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.
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ScholarGatePorovnať metódy: Language Identification · N-gram Language Model · Sentiment Analysis. Získané 2026-06-18 z https://scholargate.app/sk/compare