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SYSTEM AND METHODS FOR SCORING TELECOMMUNICATIONS NETWORK DATA USING REGRESSION CLASSIFICATION TECHNIQUES

机译:使用回归分类技术进行评分电信网络数据的系统和方法

摘要

Systems and methods provide a demand forecasting and network optimization for telecommunications services in a network. The systems and methods use classical and quantum computing devices. The computing devices evaluate data types using statistical symmetry recognition and operate between classical and quantum environments. Computing devices receive deposited data, batch data, and streamed data that relates to telecommunications services and segregate the data into spatial and temporal factors. The computing devices receive an analytic request for a forecast of the telecommunications services and conduct a multi-class plural-factored elastic cluster (MPEC) analysis for the telecommunications services using the segregated data. The MPEC analysis includes generating vectors comprised of slopes from plural coefficients to determine demand elasticity from plural features. The computing devices generate, based on the multi-class plural-factored elastic cluster model, a real-time demand-based forecast for the telecommunications services, and output the demand-based forecast.
机译:系统和方法提供网络中电信服务的需求预测和网络优化。系统和方法使用经典和量子计算设备。计算设备使用统计对称识别进行数据类型,并在经典和量子环境之间运行。计算设备接收与电信服务相关的存放数据,批次数据和流式数据,并将数据分成空间和时间因素。计算设备接收用于电信服务的预测的分析请求,并使用隔离数据对电信服务进行多类多种因子弹性集群(MPEC)分析。 MPEC分析包括产生由多个系数的斜率组成的载体,以确定来自多个特征的需求弹性。计算设备基于多类多种因子弹性集群模型生成基于实时需求的电信服务的预测,并输出基于需求的预测。

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