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Cluster mapping based on measured neural activity and physiological data

机译:基于测得的神经活动和生理数据的聚类映射

摘要

Techniques are described for determining recommended tourist based on the real time collection and analysis of biological information regarding users. Sensors in proximity to a user may collect neural activity data (e.g., brain wave data) and physiological data (e.g., blood pressure, heart rate, blood sugar level, etc.). The biological information may be analyzed to determine, for each user, an emotion metric indicating an emotional state of the user at various times. The emotion metrics may be correlated with location data to determine the emotion metric of the user at various sites during a trip. Tag metadata describing the location(s) may be clustered through semantic analysis to generate clusters of semantically similar tags. Emotion metric scores for the clusters may be employed to predict destination(s) where the user(s) may exhibit positive emotion metrics, and the predicted destination(s) may be presented to users in advertisements or other content.
机译:描述了基于关于用户的生物信息的实时收集和分析来确定推荐游客的技术。靠近用户的传感器可以收集神经活动数据(例如,脑电波数据)和生理数据(例如,血压,心率,血糖水平等)。可以分析生物学信息以确定针对每个用户的情绪度量,该情绪度量指示用户在不同时间的情绪状态。情绪度量可以与位置数据相关联,以确定在旅途中在各个地点的用户的情绪度量。可以通过语义分析将描述位置的标签元数据聚类,以生成语义相似的标签的簇。群集的情绪度量得分可以用于预测目的地,其中用户可以展现积极的情绪度量,并且可以在广告或其他内容中将预测的目的地呈现给用户。

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