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Enhancing Demand Forecast Precision for Long Lead-Time Finished Goods Using Bayesian Deep Learning: Driving Competitive Advantage Through Data-Driven Inventory Decisions

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Zenodo2025-06-07 更新2026-05-26 收录
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The FWMAE (Floor-adjusted Weighted Mean Absolute Error) is a forecasting evaluation metric developed by Prinal Kapadia as part of his Doctoral research on demand forecasting for long lead-time finished goods using Bayesian Deep Learning. This metric introduces a novel weighting and stabilization method for evaluating forecast error in volatile, low-demand, or intermittent demand environments.

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2025-06-07
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