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Feature Generation for Online/Offline Machine Learning

机译:在线/离线机器学习的特征生成

摘要

A system for utilizing models derived from offline historical data in online applications is provided. The system includes a processor and a memory storing machine-readable instructions for determining a set of contexts of the usage data, and for each of the contexts within the set of contexts, collecting service data from services supporting the media service and storing that service data in a database. The system performing an offline testing process by fetching service data for a defined context from the database, generating a first set of feature vectors based on the fetched service data, and providing the first set to a machine-learning module. The system performs an online testing process by fetching active service data from the services supporting the media streaming service, generating a second set of feature vectors based on the fetched active service data, and providing the second set to the machine-learning module.
机译:提供了一种在在线应用中利用从离线历史数据推导的模型的系统。该系统包括处理器和存储器,该存储器存储用于确定使用情况数据的上下文集合的机器可读指令,并且对于该上下文集合中的每个上下文,从支持媒体服务的服务收集服务数据并存储该服务数据。在数据库中。该系统通过从数据库中获取定义上下文的服务数据,基于所获取的服务数据生成第一组特征向量,并将第一组特征向量提供给机器学习模块,来执行离线测试过程。该系统通过从支持媒体流服务的服务中获取活动服务数据,基于所获取的活动服务数据生成第二组特征向量并将第二组特征提供给机器学习模块来执行在线测试过程。

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