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ALGORITHMIC LEARNING ENGINE FOR DYNAMICALLY GENERATING PREDICTIVE ANALYTICS FROM HIGH VOLUME, HIGH VELOCITY STREAMING DATA

机译:算法学习引擎,用于从大容量,高速流数据的动态产生预测分析

摘要

An algorithmic real-time learning engine comprising an algorithmic model generator configured to process a set of system variables from a big data source using at least one of a pattern recognition algorithm and a statistical test algorithm to identify patterns, relationships between variables, and important variables; and generate at least one of: a predictive model based on the identified patterns, relationships between variables, and important variables; statistical test model about correlations, differences between variables, or patterns in time across variables; and recurring clusters model of similar observations across variables. A data preprocessor can select system variables of interest, align the selected system variables based on time, and arrange the aligned variables into rows. The selected system variables can also be aggregated based on a pre-defined aggregate. A visualization processor generates visualizations based on the set of system variables and the predictive model, the statistical test, or recurring cluster.
机译:一种算法实时学习引擎,包括算法模型生成器,该算法模型生成器被配置为使用模式识别算法和统计测试算法中的至少一个来处理来自大数据源的一组系统变量来识别模式,变量之间的关系和重要变量之间的关系。 ;并生成以下中的至少一个:基于所识别的模式,变量与重要变量之间的关系的预测模型;关于相关性的统计测试模型,变量之间的差异,或跨变量的模式;和重复簇模型跨变量的类似观察。数据预处理器可以选择兴趣的系统变量,基于时间对齐所选的系统变量,并将对齐的变量排列成行。还可以基于预定义聚合聚合所选的系统变量。可视化处理器基于系统变量集和预测模型,统计测试或重复群集生成可视化。

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