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1
Corpus of Written Standard Slovene Gigafida 2.0
Krek, Simon; Erjavec, Tomaž; Repar, Andraž. - : Centre for Language Resources and Technologies, University of Ljubljana, 2021
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2
Brexit stance annotated tweets
Grčar, Miha; Cherepnalkoski, Darko; Mozetič, Igor. - : Jožef Stefan Institute, 2017
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3
Dataset of European Parliament roll-call votes and Twitter activities MEP 1.0
Cherepnalkoski, Darko; Karpf, Andreas; Mozetič, Igor. - : Jožef Stefan Institute, 2016
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4
Twitter sentiment for 15 European languages
Mozetič, Igor; Grčar, Miha; Smailović, Jasmina. - : Jožef Stefan Institute, 2016
Abstract: The dataset contains over 1.6 million tweets (tweet IDs), labeled with sentiment by human annotators. There are 15 Twitter corpora for the corresponding 15 European languages. The data can be used to train and evaluate Twitter sentiment classifiers, to compute annotator agreement, or to study the differences between language usage on Twitter. The data analysis is described in the following papers: I. Mozetič, M. Grčar, J. Smailović. Multilingual Twitter sentiment classification: The role of human annotators, PLoS ONE 11(5): e0155036, doi:10.1371/journal.pone.e0155036, 2016. (http://dx.doi.org/10.1371/journal.pone.0155036) I. Mozetič, L. Torgo, V. Cerqueira, J. Smailović. How to evaluate sentiment classifiers for Twitter time-ordered data?, PLoS ONE 13(3): e0194317, doi:10.1371/journal.pone.0194317, 2018. (https://dx.doi.org/10.1371/journal.pone.0194317)
Keyword: annotator self-agreement; inter-annotator agreement; multilingual; sentiment classification; Twitter
URL: http://hdl.handle.net/11356/1054
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5
Multilingual Twitter Sentiment Classification: The Role of Human Annotators ...
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6
Written corpus ccGigafida 1.0
Logar, Nataša; Erjavec, Tomaž; Krek, Simon. - : Centre for Language Resources and Technologies, University of Ljubljana, 2015
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7
Written corpus ccKres 1.0
Logar, Nataša; Erjavec, Tomaž; Krek, Simon. - : Centre for Language Resources and Technologies, University of Ljubljana, 2015
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8
Stream-based active learning for sentiment analysis in the financial domain
In: Information sciences. - New York, NY : Elsevier Science Inc. 285 (2014), 181-203
OLC Linguistik
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9
Extraction of Temporal Networks from Term Co-Occurrences in Online Textual Sources
Popović, Marko; Štefančić, Hrvoje; Sluban, Borut. - : Public Library of Science, 2014
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