THE METHOD OF IDENTIFYING INDIRECT SIGNS OF CORRUPTION ACTS BASED ON VIDEO RECORDINGS OF SPEECHES OF CIVIL SERVANTS

Krainovskikh V.I., Komarova A.A., Basov O.O.
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Abstract

At the moment, the problem of countering corruption in the field of public service still does not lose its relevance. It is assumed that when committing acts of corruption, people show certain verbal and non-verbal signals, with the help of which it is possible to identify signs of corruption. The article deals with the problem of violation of anti-corruption legislation in state and municipal institutions from the point of view of the psycho-emotional state of officials. It is proposed to use machine learning methods to analyze video and audio recordings of speeches with unprepared speech of officials of various levels of government, where they answer questions from journalists and the public, in order to determine emotions and identify aggression, uncertainty, and evasiveness in answers. The results of the study may be useful for government agencies involved in the fight against corruption, as well as for the public interested in transparency and honesty of the activities of civil servants.
根据公务员讲话录像,识别贪污行为间接迹象的方法
目前,在公共服务领域打击腐败的问题仍然具有重要意义。假设人们在实施腐败行为时,会表现出一定的语言和非语言信号,借助这些信号可以识别腐败的迹象。本文从官员的心理情绪状态入手,探讨了国家和市政机关中存在的反腐败违法问题。建议使用机器学习方法分析各级政府官员在回答记者和公众问题时的演讲视频和录音,以确定情绪并识别答案中的攻击性、不确定性和闪烁其词。这项研究的结果可能对参与反贪工作的政府机构,以及对公务员活动的透明度和诚信感兴趣的公众有用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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