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Machine-Learning Based Multi-Step Engagement Strategy Modification

机译:基于机器学习的多步参与策略修改

摘要

Machine-learning based multi-step engagement strategy modification is described. Rather than rely heavily on human involvement to manage content delivery over the course of a campaign, the described learning-based engagement system modifies a multi-step engagement strategy, originally created by an engagement-system user, by leveraging machine-learning models. In particular, these leveraged machine-learning models are trained using data describing user interactions with delivered content as those interactions occur over the course of the campaign. Initially, the learning-based engagement system obtains a multi-step engagement strategy created by an engagement-system user. As the multi-step engagement strategy is deployed, the learning-based engagement system randomly adjusts aspects of the sequence of deliveries for some users. Based on data describing the interactions of recipients with deliveries served according to both the user-created and random multi-step engagement strategies, the machine-learning models generate a modified multi-step engagement strategy.
机译:描述了基于机器学习的多步接录策略修改。通过利用机器学习模型,所描述的基于学习的参与系统通过利用机器学习模型来修改最初由接合系统用户创建的多步接录策略来管理内容交付来管理内容交付来管理内容交付。特别地,使用描述用户交互的数据训练这些杠杆式机器学习模型,因为这些交互在活动过程中发生了这些交互。最初,基于学习的参与系统获得由接合系统用户创建的多步接合策略。随着部署的多步婚姻策略,基于学习的参与系统随机调整某些用户的交付顺序的各个方面。基于描述根据用户创建的和随机的多步接合策略服务的收件人的交互的数据,机器学习模型产生修改后的多步接合策略。

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