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Intelligent recommendations implemented by modelling user profile through deep learning of multimodal user data

机译:通过深入学习多式联用户数据来建立用户简档来实现智能建议

摘要

Systems and methods are provided to implement intelligent recommendations to users by modeling user profiles through deep learning of multimodal user data. For example, a recommendation computing platform collects multimodal user data from a computing device of a registered user, wherein the multimodal user data include time-series data, unstructured textual data, and multimedia data. A first deep learning classification engine is utilized to extract features from the multimodal user data. A second deep learning classification engine is utilized to generate a profile of the registered user based on the extracted features. A deep recommendation classification engine is utilized to determine a recommendation for the registered user based on the profile of the registered user, wherein the recommendation identifies at least one additional registered user. The recommendation is presented to the registered user on the computing device of the registered user.
机译:提供系统和方法,以通过深入学习多模式用户数据来实现用户配置文件来实现对用户的智能建议。 例如,推荐计算平台从注册用户的计算设备收集多模式用户数据,其中多模式用户数据包括时间序列数据,非结构化文本数据和多媒体数据。 第一深度学习分类引擎用于从多模式用户数据中提取特征。 利用第二深度学习分类引擎基于提取的特征生成注册用户的简档。 利用深层推荐分类引擎来基于注册用户的简档确定注册用户的推荐,其中,推荐识别至少一个附加注册用户。 该推荐将在注册用户的计算设备上呈现给注册用户。

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