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Erschienen in: Social Indicators Research 3/2018

22.11.2017

Predicting Public Corruption with Neural Networks: An Analysis of Spanish Provinces

verfasst von: Félix J. López-Iturriaga, Iván Pastor Sanz

Erschienen in: Social Indicators Research | Ausgabe 3/2018

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Abstract

We contend that corruption must be detected as soon as possible so that corrective and preventive measures may be taken. Thus, we develop an early warning system based on a neural network approach, specifically self-organizing maps, to predict public corruption based on economic and political factors. Unlike previous research, which is based on the perception of corruption, we use data on actual cases of corruption. We apply the model to Spanish provinces in which actual cases of corruption were reported by the media or went to court between 2000 and 2012. We find that the taxation of real estate, economic growth, the increase in real estate prices, the growing number of deposit institutions and non-financial firms, and the same political party remaining in power for long periods seem to induce public corruption. Our model provides different profiles of corruption risk depending on the economic conditions of a region conditional on the timing of the prediction. Our model also provides different time frameworks to predict corruption up to 3 years before cases are detected.

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Fußnoten
1
A December 2014 survey by the Spanish Center for Sociological Research showed that 63.9% of Spanish citizens cited corruption as the country’s major problem.
 
3
The Nomenclature of Territorial Units for Statistics classification is a hierarchical system for dividing up the economic territory of the European Union.
 
5
Some of these measures are under study or are in the process of being implemented.
 
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Metadaten
Titel
Predicting Public Corruption with Neural Networks: An Analysis of Spanish Provinces
verfasst von
Félix J. López-Iturriaga
Iván Pastor Sanz
Publikationsdatum
22.11.2017
Verlag
Springer Netherlands
Erschienen in
Social Indicators Research / Ausgabe 3/2018
Print ISSN: 0303-8300
Elektronische ISSN: 1573-0921
DOI
https://doi.org/10.1007/s11205-017-1802-2

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