Markdown Optimization in Apparel Retail Sector

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Date

2020

Journal Title

Journal ISSN

Volume Title

Publisher

Springer international Publishing Ag

Open Access Color

Green Open Access

Yes

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No
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Average
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Average
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Abstract

Price discounts, known as markdowns, are important for fast fashion retailers to utilize inventory in a distribution channel using demand management. Estimating future demand for a given discount level requires the evaluation of historical sales data. In this evaluation recent observations might be more important than the older ones as majority of price discounts take place at the end of a selling season and that time period provides more accurate estimations. In this study, we consider a weighted least squares method for the parameter estimation of an empirical demand model used in a markdown optimization system. We suggest a heuristic procedure for the implementation of weighted least squares in a markdown optimization utilizing a generic weight function from the literature. We tested the suggested system using empirical data from a Turkish apparel retailer. Our results indicate that the weighted least squaresmethod is more proper than the ordinary least squares for the fast fashion sales data as it captures price sensitivity of demand at the end of a selling season more accurately.

Description

Hekimoglu, Mustafa/0000-0001-9446-0582

Keywords

Markdown Optimization, Demand Forecasting, Weighted Least Squares, Approximate Dynamic Programming, Demand forecasting, Markdown optimization, Approximate dynamic programming, Weighted least squares

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Citation

WoS Q

N/A

Scopus Q

Q4
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OpenCitations Citation Count
1

Source

7th International Conference on Research on National Brand & Private Label Marketing (NB&PL) -- JUN 17-19, 2020 -- Barcelona, SPAIN

Volume

Issue

Start Page

50

End Page

57
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Scopus : 3

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