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Methods for Enabling a Scalable Transformation of Diverse Data into Hypotheses, Models and Dynamic Simulations to Drive the Discovery of New Knowledge

机译:实现将各种数据按比例转换为假设,模型和动态仿真以驱动发现新知识的方法

摘要

The present invention relates to a method for the automatic identification of at least one informative data filter from a data set that can be used to identify at least one relevant data subset against a target feature for subsequent hypothesis generation, model building and model testing. The present invention describes methods, and an initial implementation, for efficiently linking relevant data both within and across multiple domains and identifying informative statistical relationships across this data that can be integrated into agent-based models. The relationships, encoded by the agents, can then drive emergent behavior across the global system that is described in the integrated data environment.
机译:本发明涉及一种用于从数据集中自动识别至少一个信息数据过滤器的方法,该方法可用于针对目标特征识别至少一个相关数据子集,以用于随后的假设生成,模型构建和模型测试。本发明描述了用于有效地链接多个域内和跨多个域的相关数据并识别跨该数据的信息性统计关系的方法和初始实现,该信息可被集成到基于代理的模型中。然后,由代理编码的关系可以驱动跨集成数据环境中描述的全局系统的紧急行为。

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