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INCIDENT PREDICTION AND RESPONSE USING DEEP LEARNING TECHNIQUES AND MULTIMODAL DATA

机译:使用深度学习技术和多模态数据进行事件预测和响应

摘要

In an approach to incident prediction and response, one or more computer processors receive one or more alerts corresponding to an incident. The one or more computer processors aggregate the one or more alerts with additional data corresponding to the incident. The one or more computer processors feed the aggregated data into a prediction model, where training of the prediction model uses associated independent stacked Restricted Boltzmann Machines utilizing one or more supervised methods and one or more unsupervised methods. The one or more computer processors determine, based, at least in part, on one or more calculations by the prediction model, at least one probability of the incident. The one or more computer processors determine whether the at least one probability exceeds a pre-defined threshold. In response to determining the at least one probability exceeds a pre-defined threshold, the one or more computer processors send at least one notification.
机译:在事件预测和响应的一种方法中,一个或多个计算机处理器接收与事件相对应的一个或多个警报。一个或多个计算机处理器将一个或多个警报与与该事件相对应的其他数据聚合在一起。一个或多个计算机处理器将聚集的数据馈送到预测模型中,其中对预测模型的训练使用相关联的独立堆叠的受限玻尔兹曼机器,该机器利用一种或多种监督方法和一种或多种非监督方法。一个或多个计算机处理器至少部分地基于预测模型的一次或多次计算来确定事件的至少一种概率。一个或多个计算机处理器确定至少一个概率是否超过预定阈值。响应于确定至少一个概率超过预定阈值,一个或多个计算机处理器发送至少一个通知。

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