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OPTIMIZING NEURAL NETWORKS FOR RISK ASSESSMENT

机译:优化神经网络的风险评估

摘要

Certain embodiments involve generating or optimizing a neural network for risk assessment. The neural network can be generated using a relationship between various predictor variables and an outcome (e.g., a condition's presence or absence). The neural network can be used to determine a relationship between each of the predictor variables and a risk indicator. The neural network can be optimized by iteratively adjusting the neural network such that a monotonic relationship exists between each of the predictor variables and the risk indicator. The optimized neural network can be used both for accurately determining risk indicators using predictor variables and determining adverse action codes for the predictor variables, which indicate an effect or an amount of impact that a given predictor variable has on the risk indicator. The neural network can be used to generate adverse action codes upon which consumer behavior can be modified to improve the risk indicator score.
机译:某些实施例涉及产生或优化神经网络以进行风险评估。可以使用各种预测变量与结果之间的关系生成神经网络(例如,条件的存在或缺席)。神经网络可用于确定每个预测器变量和风险指示符之间的关系。通过迭代地调整神经网络,可以优化神经网络,使得在每个预测变量和风险指示符之间存在单调关系。优化的神经网络可以用于准确地确定使用预测变量的风险指示符,并确定预测器变量的不利动作码,这表明给定的预测变量对风险指示符的影响或影响量。神经网络可用于产生不利的行动代码,在可以修改消费者行为以改善风险指示符分数。

著录项

  • 公开/公告号EP3852019A1

    专利类型

  • 公开/公告日2021-07-21

    原文格式PDF

  • 申请/专利权人 EQUIFAX INC.;

    申请/专利号EP20210158394

  • 发明设计人 TURNER MATTHEW;MCBURNETT MICHAEL;

    申请日2016-03-25

  • 分类号G06N3/08;G06Q40/02;

  • 国家 EP

  • 入库时间 2022-08-24 20:01:59

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