Python library for parallel multiobjective simulation optimization
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Updated
Jul 5, 2026 - Python
Python library for parallel multiobjective simulation optimization
Pareto Front Estimation Using Unit Hyperplane
Solver for Blackbox Multiobjective Optimization Problems
A few ML algorithms and Data Analysis
A/B/n Experiment Project using Response Surface Methodology
Response Surface Analysis Interactive Panel
The project focuses on the analysis of experimental data regarding the continuous biomass production of a cyanobacterium of the genus Nostoc. The primary objective is to understand how different cultivation factors influence biological growth over time, monitored through optical density (OD).
Sequential design-of-experiments and response-surface optimization study in R.
Validation harness and curated case datasets for the FORMULA-Sigma pharmaceutical formulation platform. Reproducibility package for the methods paper (harness: MIT; datasets: CC-BY-4.0). Platform engine is proprietary.
A Dynamic Pricing framework integrating Monte Carlo simulations for demand uncertainty analysis and Response Surface Methodology (RSM) to optimize pricing strategies and maximize revenue.
DOE, RSM, regression, and multi-objective optimization of 3D printing parameters for lightweight and high-strength UAV parts
Lagrangian simulation of ascorbic acid retention during spray drying of Myrciaria dubia extract. Box-Behnken RSM, Monte Carlo uncertainty, glass transition analysis. UNSA Arequipa, Peru.
Multi-Objective Optimization of 3 output functions based on 5 input variables using epsilon-constraint method in Pyomo. [developed using ChatGPT July 20 Version]
Open-source Design of Experiments in your browser. Factorial designs, ANOVA, response surfaces, optimization, and a publication-ready PDF report — without the $1,995 license.
Rust library for statistical Design of Experiments — factorial/RSM/Taguchi designs, ANOVA, power analysis, multi-response optimization. Also available as a WebAssembly/npm package.
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