10篇经典的推荐系统文章,Reinforcement Learning based Recommender System using Biclustering Technique;Learning Continuous User Representations through Hybrid Filtering with doc2vec;Deep Reinforcement Learning for List-wise Recommendations;Leveraging Long and Short-term Information in Content-aware Movie Recommendation;Deep Collaborative Autoencoder for Recommender Systems: A Unified Framework for Explicit and Implicit Feedback;Use of Deep Learning in Modern Recommendation System: A Summary of Recent Works;A Context-Aware User-Item Representation Learning for Item Recommendation;Pixie: A System for Recommending 3+ Billion Items to 200+ Million Users in Real-Time;Recommender Systems with Random Walks: A Survey;Deep Learning Based Recommender System: a Survey and New Perspectives;Auto-Encoding User Ratings via Knowledge Graphs in Recommendation Scenarios;A Deep Multimodal Approach for Cold-start Music Recommendation
2021-06-14 14:17:51 9.88MB 推荐系统 机器学习 论文
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近三年机器学习顶级期刊pmlr引用超过10的所有论文,pdf版
2021-05-16 11:42:23 44.83MB pmlr 机器学习 论文 高引用
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频谱感知与机器学习论文阅读记录.docx
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陈天奇xgb论文。Tree boosting is a highly eective and widely used machine learning method. In this paper, we describe a scalable endto- end tree boosting system called XGBoost, which is used widely by data scientists to achieve state-of-the-art results on many machine learning challenges. We propose a novel sparsity-aware algorithm for sparse data and weighted quantile sketch for approximate tree learning. More importantly, we provide insights on cache access patterns, data compression and sharding to build a scalable tree boosting system. By combining these insights, XGBoost scales beyond billions of examples using far fewer resources than existing systems.
2021-02-21 10:51:18 922KB XGBoost 机器学习 论文
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Alexnet yolo cnn vgg 等数十篇论文翻译集合,适合研究生学习
2019-12-21 21:05:40 44.25MB 深度学习 论文翻译 中英文
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全球机器学习邻域论文top20篇,全球机器学习邻域论文top20篇
2019-12-21 20:16:30 26.91MB 机器学习
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机器学习经典论文 机器学习经典论文 机器学习经典论文
2019-12-21 19:22:05 127MB 机器学习 论文 机器学习论文
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