Chekmarev Maxim Alekseevich (Adjunct, Krasnodar Higher Military School)
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The paper discusses the main security threats to machine learning systems and, in particular, the threat of model modification through the introduction of malicious data. A security algorithm based on the deployment technology of artificial neural networks is proposed. The algorithm has been tested using the developed computer program and a set of low-level features of the learning object, which allows to identify the embedded malicious data, has been obtained. Conclusions are drawn on the need for further research in this area.
Keywords:machine learning, artificial intelligence, security breanch, poisoning attack, artificial neural networks, low-level features
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Citation link: Chekmarev M. A. AN ALGORITHM TO PROTECT MACHINE LEARNING SYSTEMS FROM THE THREAT OF MODEL MODIFICATION BY DETECTING EMBEDDED MALICIOUS DATA // Современная наука: актуальные проблемы теории и практики. Серия: Естественные и Технические Науки. -2023. -№07/2. -С. 160-164 DOI 10.37882/2223-2966.2023.7-2.34 |
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