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Time Series Data Modeling Using Advanced Machine Learning and AutoML

delete2022-11-17
delete18
delete
OA
AI
A
Ahmad Alsharef
S
Sonia Sonia *
K
Karan Kumar
C
Celestine Iwendi *
DOI:10.3390/su142215292delete
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摘要

摘要

En 中文
A prominent area of data analytics is timeseries modeling where it is possible to forecast future values for the same variable using previous data. Numerous usage examples, including the economy, the weather, stock prices, and the development of a corporation, demonstrate its significance. Experiments with time series forecasting utilizing machine learning (ML), deep learning (DL), and AutoML are conducted in this paper. Its primary contribution consists of addressing the forecasting problem by experimenting with additional ML and DL models and AutoML frameworks and expanding the AutoML experimental knowledge. In addition, it contributes by breaking down barriers found in past experimental studies in this field by using more sophisticated methods. The datasets this empirical research utilized were secondary quantitative data of the real prices of the currently most used cryptocurrencies. We found that AutoML for timeseries is still in the development stage and necessitates more study to be a viable solution since it was unable to outperform manually designed ML and DL models. The demonstrated approaches may be utilized as a baseline for predicting timeseries data.
Keyword:
time series modeling
machine learning
deep learning
AutoML
data drift

期刊

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Sustainability
IF:
3.3
论文数:
10.7W
被引数:
28.4W

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Shoolini University
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论文数: 1.5K
被引数: 4.1K
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University of Bolton
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468
论文数: 453
被引数: 630
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