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A Machine Learning Approach to Recommending Files in a Collaborative Work Environment

机译:一种在协作工作环境中推荐文件的机器学习方法

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摘要

Recommendation of items to users is a problem faced by many companies in a wide spectrum of industries. This problem was traditionally approached in a one-shot manner, such as recommending movies to users based on all the movie ratings observed so far. The evolution of user activity over time was relatively unexplored. This paper presents a Machine Learning approach developed at Box Inc. for making repeated recommendations of files to users in a collaborative work environment. Our results on historical data show that this approach noticeably outperforms the approach currently implemented at Box and also the traditional Matrix Factorization approach. Collaborative Filtering; Machine Learning; Matrix Factorization; Feature Selection; Transfer of Learning.
机译:向用户推荐商品是许多行业的许多公司所面临的问题。传统上以单发方式解决此问题,例如根据到目前为止观察到的所有电影评级向用户推荐电影。用户活动随时间的变化尚待开发。本文介绍了Box Inc.开发的一种机器学习方法,用于在协作工作环境中向用户重复推荐文件。我们根据历史数据得出的结果表明,该方法明显优于Box当前实施的方法以及传统的矩阵分解方法。协同过滤机器学习;矩阵分解特征选择;学习转移。

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