Click-Through Rate Prediction Algorithm Based on Modeling of Implicit High-Order Feature Importance,ERICDATA高等教育知識庫
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篇名
Click-Through Rate Prediction Algorithm Based on Modeling of Implicit High-Order Feature Importance
並列篇名
Click-Through Rate Prediction Algorithm Based on Modeling of Implicit High-Order Feature Importance
作者 Qing YangNing LiShiyan HuHeyong LiJingwei Zhang
英文摘要

Click-through rate (CTR) prediction plays a central role in online advertising and recommendation systems. In recent years, with the successful application of deep neural networks (DNNs) in many fields, researchers have integrated deep learning into CTR prediction algorithms to model implicit high-order features. However, most of these existing methods unify the weights of implicit higher-order features to predict user behaviors. The importance of such features of different dimensions for predicting user click behaviors are different. Base on this, we propose a prediction method that dynamically learns the importance of implicit high-order features. Specifically, we integrate the output features of deep and shallow components, and adaptively learn the weights of implicit high-order features from among all features through the designed attention network, which effectively capturing the deep interests of users. In addition, this framework has strong versatility and can be combined with shallow models such as Logistic Regression (LR) and Factorization Machines (FMs) to form different models and achieve optimal performance. The extended experiment is conducted on two large-scale datasets, AVAZU and SafeDrive, and the experimental results show that the performance of the proposed model is superior to that of existing baseline models.

 

起訖頁 1077-1086
關鍵詞 Recommendation algorithmClick-through rateImplicit high order featureAttention network
刊名 網際網路技術學刊  
期數 202209 (23:5期)
出版單位 台灣學術網路管理委員會
DOI 10.53106/160792642022092305016   複製DOI
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