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INTEGRATIVE MACHINE LEARNING FRAMEWORK FOR COMBINING SENTIMENT-BASED AND SYMPTOM-BASED PREDICTIVE INFERENCES

机译:综合机器学习框架结合基于情绪和基于症状的预测推论

摘要

Techniques for integrative machine learning using sentiment-based predictive inferences and symptom-based predictive are discussed herein. In one example, a method includes determining, based on one or more health monitoring logs, a first distribution of symptomatic prediction labels over a first period of time associated with the one or more health monitoring logs; processing the one or more health monitoring logs and using a sentiment detection machine learning model to determine a second distribution of extracted sentiment scores over the first period of time; generating, based on the first distribution and the second distribution, an aggregate distribution of inferred health-related predictions over the first period of time; and causing display of an aggregate distribution user interface that is configured to display the aggregate distribution.
机译:本文讨论了使用基于情绪的预测推论和基于症状的预测性的综合机器学习的技术。 在一个示例中,一种方法包括基于一个或多个健康监视日志确定症状预测标签的第一分布与一个或多个健康监测日志相关联的第一阶段; 处理一个或多个健康监控日志并使用情绪检测机学习模型,在第一阶段中确定提取的情绪分数的第二分布; 基于第一个分布和第二分布产生,在第一阶段内具有推断的健康相关预测的总分布; 并导致显示配置为显示聚合分布的聚合分布用户界面。

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