Improved Demand Forecasting of a Retail Store Using a Hybrid Machine Learning Model
Vinit Taparia,
Piyush Mishra,
Nitik Gupta
et al.
Abstract:Accurate demand forecasting is a competitive advantage for all supply chain components, including retailers. Approaches like naïve, moving average, weighted average, and exponential smoothing are commonly used to forecast demand. However, these simple approaches may lead to higher inventory and lost sales costs when the trend in demand is non-linear. Additionally, price strongly influences demand, and we can’t neglect the impact of price on demand. Similarly, the demand for a stock keeping unit (SKU) depends o… Show more
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