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Disentangling Trend and Seasonality in Panel Data: An Empirical Analysis of Food Product Sales
- Choi, Yongok;
- Jeong, Minsoo
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0초록
This paper provides a novel approach to extract the trend and seasonal components from panel data consisting of individual entries showing both strong trend and seasonality. For such a data set, the usual principal component analysis generally fails to disentangle them. In the paper, we suggest a methodology to separately identify them using the Hodrick-Prescott filter that is commonly and widely used to remove trends in various economic data. We apply our methodology to a food product sales panel data and show that it effectively disentangles the trend and seasonal components in the data set.
키워드
trend; seasonality; panel data; principal component analysis; Hodrick-Prescott filter
- 제목
- Disentangling Trend and Seasonality in Panel Data: An Empirical Analysis of Food Product Sales
- 저자
- Choi, Yongok; Jeong, Minsoo
- 발행일
- 2022-09
- 권
- 33
- 호
- 3
- 페이지
- 1 ~ 10