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SYSTEMS AND METHODS FOR MITIGATION BIAS IN MACHINE LEARNING MODEL OUTPUT

机译:机器学习模型输出中缓解偏差的系统和方法

摘要

Systems and methods for generating machine learning model output from an input data set is provided. The system includes a processor and a memory coupled to the processor. The memory may store processor-executable instructions that, when executed, configure the processor to: obtain a qualitative data set; determine a regularization threshold value based on the qualitative data set for regularizing the machine learning output; determine a quantitative feedback score for the input data set, wherein the quantitative feedback score includes a bias-detection indication value; determine an adjustment parameter based on the quantitative feedback score and the regularization threshold value; and update the machine learning model based on the determined adjustment parameter.
机译:提供了用于生成从输入数据集输出的机器学习模型的系统和方法。 该系统包括处理器和耦合到处理器的存储器。 存储器可以存储处理器可执行的指令,当执行时,将处理器配置为:获取定性数据集; 基于用于规范机器学习输出的定性数据集来确定正则化阈值; 确定输入数据集的定量反馈分数,其中定量反馈分数包括偏置检测指示值; 根据定量反馈分数和正则化阈值确定调整参数; 并根据确定的调整参数更新机器学习模型。

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