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@stxupengyu
stxupengyu
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🎯
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Pangyu stxupengyu

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stay doing, stay thinking.
  • Beijing, China

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stxupengyu/README.md

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  1. Matrix-Factorization-for-RecommendationMatrix-Factorization-for-RecommendationPublic

    Using Matrix Factorization/Probabilistic Matrix Factorization to solve Recommendation。矩阵分解进行推荐系统算法。

    R 2

  2. Matrix-Factorization-Implicit-FeedbackMatrix-Factorization-Implicit-FeedbackPublic

    使用矩阵分解算法处理隐式反馈数据,并进行Top-N推荐。The matrix factorization algorithm is used to process the implicit feedback data and make top-N recommendation.

    2

  3. NCF-MF-for-RecommendationNCF-MF-for-RecommendationPublic

    分别使用传统方法(KNN,SVD,NMF等)和深度方法(NCF)进行推荐系统的评分预测。Traditional methods (KNN, SVD, NMF, etc.) and depth method (NCF) were used to predict rating of the recommendation system.

    Jupyter Notebook 7

  4. P300-BCI-Data-AnalysisP300-BCI-Data-AnalysisPublic

    2020年研究生数学建模竞赛C题,全国二等奖,分析脑机接口数据进行分析预测。The data of BCI were analyzed and predicted.

    Jupyter Notebook 7 3

  5. multi-factor-strategy-joinquantmulti-factor-strategy-joinquantPublic

    在聚宽(joinquant)平台上使用多因子策略进行量化投资模拟。

    Jupyter Notebook 33 10

  6. CVPR-2020-LEAPCVPR-2020-LEAPPublic

    Unofficial implement of LEAP(Deep Representation Learning on Long-tailed Data: A Learnable Embedding Augmentation Perspective) for Multi-Label Classification.

    Python 9 1


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