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Summary of Your Decision Path Does Matter in Pre-training Industrial Recommenders with Multi-source Behaviors, by Chunjing Gan et al.


Your decision path does matter in pre-training industrial recommenders with multi-source behaviors

by Chunjing Gan, Binbin Hu, Bo Huang, Ziqi Liu, Jian Ma, Zhiqiang Zhang, Wenliang Zhong, Jun Zhou

First submitted to arxiv on: 27 May 2024

Categories

  • Main: Machine Learning (cs.LG)
  • Secondary: None

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GrooveSquid.com Paper Summaries

GrooveSquid.com’s goal is to make artificial intelligence research accessible by summarizing AI papers in simpler terms. Each summary below covers the same AI paper, written at different levels of difficulty. The medium difficulty and low difficulty versions are original summaries written by GrooveSquid.com, while the high difficulty version is the paper’s original abstract. Feel free to learn from the version that suits you best!

Summary difficulty Written by Summary
High Paper authors High Difficulty Summary
Read the original abstract here
Medium GrooveSquid.com (original content) Medium Difficulty Summary
The proposed Hierarchical decIsion path Enhanced Representation (HIER) model aims to improve cross-domain recommendation by taking into account the decision paths users take when interacting with online service platforms. The approach leverages graph neural networks to capture high-order topological information from knowledge graphs and adaptively learns decision paths through contrastive learning. Experimental results demonstrate the superiority of HIER in both online and offline environments.
Low GrooveSquid.com (original content) Low Difficulty Summary
The paper proposes a new way to improve recommendations on online service platforms by considering how users make decisions. The approach uses special computer programs called graph neural networks to understand relationships between different types of user behavior. It also adapts to individual user decision-making patterns, which helps improve the quality of recommended services. The method performs well in both real-world and simulated environments.

Keywords

* Artificial intelligence