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  5. Volume 40, Issue 2 (2023)
  6. Innovative Analytical and Statistical Te ...

Regional Formation and Development Studies

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Innovative Analytical and Statistical Technology in Election Forensics
Volume 40, Issue 2 (2023), pp. 28–42
Yuliia Yatsyna   Igor Kudinov  

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https://doi.org/10.15181/rfds.v40i2.2528
Pub. online: 10 July 2023      Type: Article      Open accessOpen Access

Published
10 July 2023

Abstract

The article examines the crucial role of innovative analytical and statistical technology in electoral forensics, which are increasingly used for detecting and preventing electoral corruption and fraud. By analysing vast amounts of data and detecting anomalies, electoral forensic investigations can contribute to fair and transparent democratic processes. The research aims to explore the effectiveness of these technologies and their potential impact on improving the transparency and fairness of electoral processes, using a multi-method approach that includes analysing relevant documents, media coverage, public opinion, and recent fraud cases. The authors divide the implementation of innovative analytical and statistical technologies for combating election corruption into four groups. The first is the analysis of statistical data and research on corruption, including election processes, which can be called secondary data analysis. The second is the analysis of documentary data containing information on corrupt actions and offences, including election processes. The third is the development of mathematical methods and algorithms using cutting-edge technologies such as artificial intelligence and machine learning for detecting anomalies and hidden patterns. The fourth is experimental developments in information technologies as a means of ensuring proper governance and combating corruption. While the use of algorithms for detecting anomalies in electoral statistics data can be an important tool, it should be used with caution, and in combination with other sources of information, to avoid the consequences of delegitimising the election results.

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Keywords
election fraud election corruption forensics Benford’s Law artificial intelligence machine learning

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D73

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