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TECHNIQUES FOR PROCESSING QUERIES RELATING TO TASK-COMPLETION TIMES OR CROSS-DATA-STRUCTURE INTERACTIONS

机译:处理与任务完成时间或跨数据结构交互有关的查询的技术

摘要

Methods and systems disclosed herein relate generally to data processing by applying machine learning techniques to iteration data to identify anomaly subsets of iteration data. More specifically, iteration data for individual iterations of a workflow involving a set of tasks may contain a client data set, client-associated sparse indicators and their classifications, and a set of processing times for the set of tasks performed in that iteration of the workflow. These individual iterations of the workflow may also be associated with particular data sources. Using the iteration data, anomaly subsets within the iteration data can be identified, such as data items resulting from systematic error associated with particular data sources, sets of sparse indicators to be validated or double-checked, or tasks that are associated with long processing times. The anomaly subsets can be provided in a generated communication or report in order to optimize future iterations of the workflow.
机译:本文公开的方法和系统通常涉及通过将机器学习技术应用于迭代数据以识别迭代数据的异常子集来进行数据处理。更具体地,涉及一组任务的工作流的各个迭代的迭代数据可以包含客户端数据集,与客户端相关的稀疏指示符及其分类,以及在该工作流的迭代中针对该任务组执行的一组处理时间。 。工作流的这些单独的迭代还可以与特定的数据源相关联。使用迭代数据,可以识别迭代数据中的异常子集,例如与特定数据源相关的系统性错误,要验证或仔细检查的稀疏指标集或与较长处理时间相关联的任务引起的数据项。可以在生成的通信或报告中提供异常子集,以优化工作流的未来迭代。

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