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VIDEO RECOMMENDATION WITH MULTI-GATE MIXTURE OF EXPERTS SOFT ACTOR CRITIC

机译:具有专家软演员评论家的多栅极混合的视频推荐

摘要

Described herein are embodiments of a reinforcement learning based large-scale multi-objective ranking system. Embodiments of the system may be used for optimizing short-video recommendation on a video sharing platform. Multiple competing ranking objective and implicit selection bias in user feedback are the main challenges in real-world platform. In order to address those challenges, multi-gate mixture of experts (MMoE) and soft actor critic (SAC) are integrated together into a MMoE_SAC system. Experiment results demonstrate that embodiments of the MMoE_SAC system may greatly reduce a loss function compared to systems only based on single strategies.
机译:这里描述的是基于加强学习的大型多目标排名系统的实施例。 系统的实施例可用于优化视频共享平台上的短视频推荐。 用户反馈中的多个竞争排名目标和隐式选择偏差是现实世界平台中的主要挑战。 为了解决这些挑战,专家(MMOE)和软演员评论家(SAC)的多栅极混合物集成在一起成为MMOE_SAC系统。 实验结果表明,与单一策略仅与系统相比,MMOE_SAC系统的实施例可能大大降低损耗功能。

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