Retrievability in an Integrated Retrieval System: An Extended Study

March 27, 2023 Β· Declared Dead Β· πŸ› International Journal on Digital Libraries

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Authors Dwaipayan Roy, Zeljko Carevic, Philipp Mayr arXiv ID 2303.15036 Category cs.IR: Information Retrieval Cross-listed cs.DL Citations 2 Venue International Journal on Digital Libraries Last Checked 4 months ago
Abstract
Retrievability measures the influence a retrieval system has on the access to information in a given collection of items. This measure can help in making an evaluation of the search system based on which insights can be drawn. In this paper, we investigate the retrievability in an integrated search system consisting of items from various categories, particularly focussing on datasets, publications \ijdl{and variables} in a real-life Digital Library (DL). The traditional metrics, that is, the Lorenz curve and Gini coefficient, are employed to visualize the diversity in retrievability scores of the \ijdl{three} retrievable document types (specifically datasets, publications, and variables). Our results show a significant popularity bias with certain items being retrieved more often than others. Particularly, it has been shown that certain datasets are more likely to be retrieved than other datasets in the same category. In contrast, the retrievability scores of items from the variable or publication category are more evenly distributed. We have observed that the distribution of document retrievability is more diverse for datasets as compared to publications and variables.
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