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Machine learning system for configuring social media campaigns

机译:用于配置社交媒体广告系列的机器学习系统

摘要

Techniques for using machine learning to configure social media campaigns are disclosed. A social relationship management (SRM) service performs supervised machine learning to generate a learned model, at least by: generating feature vectors based on training data including campaign configuration data and one or more campaign success metrics; and performing pattern recognition on the feature vectors to determine one or more preferred campaign configurations. The SRM service publishes messages to one or more social media platforms and receives user interaction data associated with users' interactions with the messages. The SRM service performs unsupervised machine learning to update the learned model based at least in part on the user interaction data. The SRM service receives a request to configure a social media campaign, applies data associated with the request to the learned model to determine a preferred campaign configuration, and configures the social media campaign based on the preferred campaign configuration.
机译:披露了使用机器学习来配置社交媒体广告系列的技术。社交关系管理(SRM)服务执行监督机器学习以生成学习模型,至少通过:基于培训数据生成特征向量,包括广告系列配置数据和一个或多个广告系列成功指标;在特征向量上执行模式识别以确定一个或多个优选的广告系列配置。 SRM服务将消息发布到一个或多个社交媒体平台,并接收与用户交互相关的用户交互数据与消息。 SRM服务执行无监督机器学习,至少部分地基于用户交互数据更新学习模型。 SRM服务接收到配置社交媒体广告系列的请求,将与学习模型的请求相关联的数据应用,以确定首选的广告系列配置,并根据首选的广告系列配置配置社交媒体广告系列。

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