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Predicting the Number of Downloads of Open Datasets by Naïve Bayes Classifier (CROSBI ID 273679)

Prilog u časopisu | izvorni znanstveni rad | međunarodna recenzija

Šlibar, Barbara Predicting the Number of Downloads of Open Datasets by Naïve Bayes Classifier // TEM Journal, 8 (2019), 4; 1331-1338. doi: 10.18421/TEM84-33

Podaci o odgovornosti

Šlibar, Barbara

engleski

Predicting the Number of Downloads of Open Datasets by Naïve Bayes Classifier

Nowadays, the use of Open Data has become more common and prominent, but there are a lot of questions regarding its quality. Most of the revised researches deal with the quality of Open Data portals, rather than estimation of the open datasets quality. Therefore, the main idea of this research is lowering to the level of the dataset itself in order to assess how much such data is downloaded by end users of Open Data portals on the basis of general dataset characteristics. A model for predicting the number of downloads of open datasets based on their general characteristics was constructed using the Naïve Bayes Classifier. Based on the obtained results, it is discussed if the certain dataset character is good predictor of open dataset downloading and to what extent.

Dataset Characteristics ; Naïve Bayes Classifier ; Open Data

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Podaci o izdanju

8 (4)

2019.

1331-1338

objavljeno

2217-8309

2217-8333

10.18421/TEM84-33

Povezanost rada

nije evidentirano

Poveznice
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