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---
languages: 
- sr

licenses:
- cc-by-sa-4.0

task_categories:
- structure-prediction

task_ids:
- tokenization
- normalization
- part-of-speech-tagging
- lemmatization
- named-entity-recognition

---
This dataset is based on 3,748 Serbian tweets that were segmented into sentences, tokens, and annotated with normalized forms, lemmas, MULTEXT-East tags (XPOS), UPOS tags and morphological features, and named entities.

The dataset contains 5462 training samples (sentences), 711 validation samples and 725 test samples. 
Each sample represents a sentence and includes the following features: sentence ID ('sent\_id'), 
list of tokens ('tokens'), list of normalised tokens ('norms'), list of lemmas ('lemmas'), list of UPOS tags ('upos\_tags'), 
list of MULTEXT-East tags ('xpos\_tags), list of morphological features ('feats'), 
and list of named entity IOB tags ('iob\_tags'), which are encoded as class labels.

If you are using this dataset in your research, please cite the following paper:

```
@article{Miličević_Ljubešić_2016,
title={Tviterasi, tviteraši or twitteraši? Producing and analysing a normalised dataset of Croatian and Serbian tweets}, 
volume={4}, 
url={https://revije.ff.uni-lj.si/slovenscina2/article/view/7007}, 
DOI={10.4312/slo2.0.2016.2.156-188}, 
number={2}, 
journal={Slovenščina 2.0: empirical, applied and interdisciplinary research}, 
author={Miličević, Maja and Ljubešić, Nikola}, 
year={2016}, 
month={Sep.}, 
pages={156–188} }
```