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A Survey on Large-Scale Machine Learning

delete2020-01-01
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OA
AI
王
王萌 (Meng Wang) *
W
Weijie Fu
Xiangnan He 封面图
Xiangnan He (Xiangnan He)
S
Shijie Hao
X
Xindong Wu
DOI:10.1109/TKDE.2020.3015777delete
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摘要

摘要

En 中文
Machine learning can provide deep insights into data, allowing machines to make high-quality predictions and having been widely used in real-world applications, such as text mining, visual classification, and recommender systems. However, most sophisticated machine learning approaches suffer from huge time costs when operating on large-scale data. This issue calls for the need of Large-scale Machine Learning (LML), which aims to learn patterns from big data with comparable performance efficiently. In this paper, we offer a systematic survey on existing LML methods to provide a blueprint for the future developments of this area. We first divide these LML methods according to the ways of improving the scalability: 1) model simplification on computational complexities, 2) optimization approximation on computational efficiency, and 3) computation parallelism on computational capabilities. Then we categorize the methods in each perspective according to their targeted scenarios and introduce representative methods in line with intrinsic strategies. Lastly, we analyze their limitations and discuss potential directions as well as open issues that are promising to address in the future.
Keyword:
Machine learning
Computational modeling
Optimization
Predictive models
Big Data
Computational complexity
Large-scale machine learning
efficient machine learning
big data analysis
efficiency
survey
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期刊

IEEE Transactions on Knowledge and Data Engineering 封面图
IEEE Transactions on Knowledge and Data Engineering
IF:
10.4
论文数:
6.8K
被引数:
3.2W

机构

H
hefei university of technology
学者数:
2.5W
论文数: 1.7W
被引数: 35
C
chinese academy of sciences
学者数:
56.7W
论文数: 45.0W
被引数: 704
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