ADAPTIVE TRAINABLE MODEL FOR DETECTING VULNERABILITIES OF UMV INTERFACES BASED ON PROBABILISTIC AUTOMATES

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Abstract

The purpose of this work is to develop a model that will provide an opportunity to study the processes of detecting vulnerabilities of UMV interfaces in dynamically changing external environment. An algorithmic approach based on adaptive intelligent technology methods for monitoring of the state of UMV resources is considered. An adaptive trainable model using probabilistic estimation of changes in the stateof UMV resources as well as nonparametrical statistics methods are presented.
基于概率自动化的自适应可训练umv接口漏洞检测模型
这项工作的目的是开发一个模型,该模型将为研究动态变化的外部环境中UMV接口漏洞的检测过程提供机会。提出了一种基于自适应智能技术方法的UMV资源状态监测算法。提出了一种基于概率估计和非参数统计方法的自适应可训练模型。
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