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DISTRIBUTED EVENT PREDICTION AND MACHINE LEARNING OBJECT RECOGNITION SYSTEM

机译:分布式事件预测和机器学习对象识别系统

摘要

A computing device predicts occurrence of an event or classifies an object using distributed unlabeled data. Supervised data that includes a labeled subset of a plurality of observation vectors is identified. A total number of threads that will perform labeling of an unlabeled subset of the plurality of observation vectors is determined. The identified supervised data is uploaded to each thread of the total number of threads. Unlabeled observation vectors are randomly select from the unlabeled subset of the plurality of observation vectors to allocate to each thread of the total number of threads. The randomly selected, unlabeled observation vectors are uploaded to each thread of the total number of threads based on the allocation. The value of the target variable for each observation vector of the unlabeled subset of the plurality of observation vectors is determined based on a converged classification matrix and output to a labeled dataset.
机译:计算设备使用分布的未标记数据来预测事件的发生或对对象进行分类。识别包括多个观察向量的标记子集的监督数据。确定将对多个观察向量的未标记子集进行标记的线程总数。所标识的监督数据将上载​​到线程总数中的每个线程。从多个观察向量的未标记子集中随机选择未标记的观察向量,以分配给线程总数的每个线程。根据分配,将随机选择的,未标记的观察向量上载到线程总数中的每个线程。基于会聚的分类矩阵确定多个观察向量的未标记子集的每个观察向量的目标变量的值,并将其输出到标记的数据集。

著录项

  • 公开/公告号US2018053071A1

    专利类型

  • 公开/公告日2018-02-22

    原文格式PDF

  • 申请/专利权人 SAS INSTITUTE INC.;

    申请/专利号US201715686863

  • 发明设计人 XU CHEN;TAO WANG;

    申请日2017-08-25

  • 分类号G06K9/62;G06N99;G06K9/66;

  • 国家 US

  • 入库时间 2022-08-21 13:02:18

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