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最適化支援付き全因子計画法×応答曲面法 (RSM)×
分野実験計画法実験計画法
系統Process / pipelineHypothesis test
提唱年1980s–1990s (formalized with desirability functions by Derringer & Suich, 1980)1951
提唱者Integrated from D. C. Montgomery (DoE) and classical optimization literatureGeorge E. P. Box & K. B. Wilson
種類Hybrid experimental-optimization workflowSecond-order polynomial response surface model
原典Montgomery, D. C. (2017). Design and Analysis of Experiments (9th ed.). Wiley. ISBN: 978-1119492443Box, G. E. P. & Wilson, K. B. (1951). On the experimental attainment of optimum conditions. Journal of the Royal Statistical Society, Series B, 13(1), 1–45. link ↗
別名OA-FFD, full factorial with optimization, full factorial design with response optimization, DoE-optimization hybridRSM, Central Composite Design, Box-Behnken Design, CCD
関連37
概要Optimization-assisted full factorial design is a structured engineering workflow that runs a complete full factorial experiment — covering every combination of factor levels — and then applies a formal optimization method to identify the factor settings that best satisfy one or more performance targets. It combines the exhaustive data coverage of full factorial design with numerical or analytical optimization to turn experimental results into actionable optimal configurations.Response Surface Methodology is a collection of statistical and mathematical techniques for building an empirical second-order polynomial model that relates a continuous response variable to two or more controllable input factors, and then locating the factor settings that optimize that response. The approach was introduced by George E. P. Box and K. B. Wilson in their landmark 1951 paper and has since become a cornerstone of process optimization across engineering, chemistry, food science, and pharmaceutics.
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ScholarGate手法を比較: Optimization-assisted full factorial design · Response Surface Methodology. 2026-06-18に以下より取得 https://scholargate.app/ja/compare