By the end of this course, learners will be able to define the fundamentals of forecasting, classify forecasting methods, apply regression and decomposition techniques, and implement advanced models like ARIMA and SARIMA to accurately predict time-dependent data.
您将学到什么
Define forecasting fundamentals and classify methods for time-dependent data.
Apply regression, decomposition, and exponential smoothing in R.
Implement ARIMA and SARIMA models with ACF/PACF diagnostics for accuracy.
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您将学习的工具
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作业
11 项作业
授课语言:英语(English)
91%
of learners achieved a positive career outcome
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人们为什么选择 Coursera 来帮助自己实现职业发展

Felipe M.
自 2018开始学习的学生
''能够按照自己的速度和节奏学习课程是一次很棒的经历。只要符合自己的时间表和心情,我就可以学习。'

Jennifer J.
自 2020开始学习的学生
''我直接将从课程中学到的概念和技能应用到一个令人兴奋的新工作项目中。'

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自 2021开始学习的学生
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学生评论
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显示 3/21 个
RR
已于 May 20, 2026审阅
Great training on predictive analytics techniques.
MM
已于 Mar 29, 2026审阅
A highly informative course that explains complex forecasting techniques in a structured and approachable manner. It helped me better understand how to work with time-dependent data.
AS
已于 Mar 18, 2026审阅
This course offers a clear and comprehensive introduction to forecasting methods. The progression from simple models to ARIMA-based approaches builds confidence in time series analysis.
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