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Mô hình người bán báo×Định lượng Kinh tế (EOQ)×Tối ưu hóa ngẫu nhiên×
Lĩnh vựcVận trù họcVận trù họcTối ưu hóa
HọRegression modelRegression modelProcess / pipeline
Năm ra đời195119131951 (SGD); 2014 (Adam)
Người khởi xướngArrow, Harris & MarschakFord W. Harris
LoạiStochastic single-period inventory optimizationDeterministic inventory optimization modelGradient-based iterative optimization
Công trình gốcArrow, K. J., Harris, T., & Marschak, J. (1951). Optimal inventory policy. Econometrica, 19(3), 250–272. DOI ↗Harris, F. W. (1913/1990). How many parts to make at once. Operations Research, 38(6), 947–950 (reprint). DOI ↗Robbins, H. & Monro, S. (1951). A Stochastic Approximation Method. Annals of Mathematical Statistics, 22(3), 400-407. DOI ↗
Tên gọi khácNewsboy Model, Single-Period Inventory Model, Christmas Tree Problem, Gazete Satıcısı ModeliWilson EOQ Model, Harris-Wilson Model, Optimal Lot Size Model, Ekonomik Sipariş MiktarıStokastik Optimizasyon (SGD & Varyantları), stochastic gradient descent, SGD, Adam
Liên quan333
Tóm tắtThe Newsvendor Model is a single-period stochastic inventory optimization framework that determines the profit-maximizing order quantity when demand is uncertain and unsold units cannot be carried forward. Formally introduced by Arrow, Harris, and Marschak (1951) in their foundational work on optimal inventory policy, the model balances the cost of ordering too much (overage) against the cost of ordering too little (underage) to yield a closed-form optimality condition known as the critical ratio.The Economic Order Quantity (EOQ) is a classic deterministic inventory model that identifies the order quantity minimizing the sum of annual ordering and holding costs. Introduced by Ford W. Harris in 1913 and later popularized by R. H. Wilson, EOQ assumes constant demand, fixed cost parameters, and instantaneous replenishment. It remains the foundational benchmark for inventory management in manufacturing, retail, and supply chain contexts where demand is relatively stable and costs are well-characterized.Stochastic optimization is a family of iterative methods that minimize an objective function by computing gradients on randomly sampled subsets of data — mini-batches — rather than on the entire dataset at once. Pioneered by Robbins and Monro in 1951 as stochastic approximation, the approach became the standard engine for training large-scale machine-learning models through variants such as SGD with momentum, AdaGrad, RMSProp, and Adam.
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ScholarGateSo sánh phương pháp: Newsvendor Model · Economic Order Quantity · Stochastic Optimization. Truy cập ngày 2026-06-20 từ https://scholargate.app/vi/compare