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Systems and methods for preventing decentralized malware attacks

机译:防止分散恶意软件攻击的系统和方法

摘要

The disclosed computer-implemented method for preventing decentralized malware attacks may include (i) receiving, by a computing device, node data from a group of nodes over a network, (ii) training a machine learning model by shuffling the node data to generate a set of outputs utilized for predicting malicious data, (iii) calculating a statistical deviation for each output in the set of outputs from an aggregated output for the set of outputs, and (iv) identifying, based on the statistical deviation, an anomalous output in the set of outputs that is associated with one or more of the malicious nodes, the one or more malicious nodes hosting the malicious data. Various other methods, systems, and computer-readable media are also disclosed.
机译:所公开的用于防止分散性恶意软件攻击的计算机实现的方法可以包括(i)通过计算设备接收来自网络上的一组节点的节点数据,(ii)通过将节点数据进行混洗以生成机器学习模型来生成机器学习模型用于预测恶意数据的输出集(iii)根据统计偏差,计算来自集合输出的集合输出的每个输出中的每个输出的统计偏差,以及基于统计偏差,是一种异常输出与一个或多个恶意节点相关联的输出集,托管恶意数据的一个或多个恶意节点。还公开了各种其他方法,系统和计算机可读介质。

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