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OMLT: Optimization & Machine Learning Toolkit

OMLT: Optimization & Machine Learning Toolkit

4 February 2022
Francesco Ceccon
Jordan Jalving
Joshua Haddad
Alexander Thebelt
Calvin Tsay
C. Laird
Ruth Misener
ArXivPDFHTML

Papers citing "OMLT: Optimization & Machine Learning Toolkit"

21 / 21 papers shown
Title
Reinforcement learning with combinatorial actions for coupled restless bandits
Reinforcement learning with combinatorial actions for coupled restless bandits
Lily Xu
Bryan Wilder
Elias B. Khalil
Milind Tambe
67
1
0
01 Mar 2025
Training Neural ODEs Using Fully Discretized Simultaneous Optimization
Training Neural ODEs Using Fully Discretized Simultaneous Optimization
Mariia Shapovalova
Calvin Tsay
29
2
0
24 Feb 2025
Formulations and scalability of neural network surrogates in nonlinear
  optimization problems
Formulations and scalability of neural network surrogates in nonlinear optimization problems
Robert B. Parker
Oscar Dowson
Nicole LoGiudice
Manuel Garcia
Russell Bent
61
0
0
16 Dec 2024
Verifying message-passing neural networks via topology-based bounds
  tightening
Verifying message-passing neural networks via topology-based bounds tightening
Christopher Hojny
Shiqiang Zhang
Juan S. Campos
Ruth Misener
AAML
37
6
0
21 Feb 2024
Physics-Informed Neural Networks with Hard Linear Equality Constraints
Physics-Informed Neural Networks with Hard Linear Equality Constraints
Hao Chen
Gonzalo E. Constante-Flores
Canzhou Li
PINN
11
9
0
11 Feb 2024
Generating Likely Counterfactuals Using Sum-Product Networks
Generating Likely Counterfactuals Using Sum-Product Networks
Jiri Nemecek
Tomás Pevný
Jakub Marecek
TPM
65
0
0
25 Jan 2024
Optimization Over Trained Neural Networks: Taking a Relaxing Walk
Optimization Over Trained Neural Networks: Taking a Relaxing Walk
Jiatai Tong
Junyang Cai
Thiago Serra
60
6
0
07 Jan 2024
Computational Tradeoffs of Optimization-Based Bound Tightening in ReLU
  Networks
Computational Tradeoffs of Optimization-Based Bound Tightening in ReLU Networks
Fabian Badilla
Marcos Goycoolea
Gonzalo Muñoz
Thiago Serra
57
7
0
27 Dec 2023
PySCIPOpt-ML: Embedding Trained Machine Learning Models into
  Mixed-Integer Programs
PySCIPOpt-ML: Embedding Trained Machine Learning Models into Mixed-Integer Programs
Mark Turner
Antonia Chmiela
Thorsten Koch
Michael Winkler
AI4CE
49
8
0
13 Dec 2023
Neur2RO: Neural Two-Stage Robust Optimization
Neur2RO: Neural Two-Stage Robust Optimization
Franccois Hélénon
J. Huber
F. B. Amar
Stéphane Doncieux
11
4
0
06 Oct 2023
Data-driven decision-focused surrogate modeling
Data-driven decision-focused surrogate modeling
Rishabh Gupta
Qi Zhang
OffRL
AI4CE
25
12
0
23 Aug 2023
Optimizing the switching operation in monoclonal antibody production:
  Economic MPC and reinforcement learning
Optimizing the switching operation in monoclonal antibody production: Economic MPC and reinforcement learning
Sandra A. Obiri
Song Bo
B. T. Agyeman
Benjamin Decardi-Nelson
Jinfeng Liu
11
2
0
07 Aug 2023
A Constraint Enforcement Deep Reinforcement Learning Framework for
  Optimal Energy Storage Systems Dispatch
A Constraint Enforcement Deep Reinforcement Learning Framework for Optimal Energy Storage Systems Dispatch
Shengren Hou
Edgar Mauricio Salazar Duque
Peter Palensky
Pedro P. Vergara
11
4
0
26 Jul 2023
When Deep Learning Meets Polyhedral Theory: A Survey
When Deep Learning Meets Polyhedral Theory: A Survey
Joey Huchette
Gonzalo Muñoz
Thiago Serra
Calvin Tsay
AI4CE
88
32
0
29 Apr 2023
Model-based feature selection for neural networks: A mixed-integer
  programming approach
Model-based feature selection for neural networks: A mixed-integer programming approach
Shudian Zhao
Calvin Tsay
Jan Kronqvist
19
5
0
20 Feb 2023
Physics Informed Piecewise Linear Neural Networks for Process
  Optimization
Physics Informed Piecewise Linear Neural Networks for Process Optimization
Ece S. Koksal
E. Aydın
PINN
8
11
0
02 Feb 2023
Tree ensemble kernels for Bayesian optimization with known constraints
  over mixed-feature spaces
Tree ensemble kernels for Bayesian optimization with known constraints over mixed-feature spaces
Alexander Thebelt
Calvin Tsay
Robert M. Lee
Nathan Sudermann-Merx
David Walz
B. Shafei
Ruth Misener
UQCV
BDL
25
10
0
02 Jul 2022
Neur2SP: Neural Two-Stage Stochastic Programming
Neur2SP: Neural Two-Stage Stochastic Programming
Justin Dumouchelle
R. Patel
Elias Boutros Khalil
Merve Bodur
49
26
0
20 May 2022
P-split formulations: A class of intermediate formulations between big-M
  and convex hull for disjunctive constraints
P-split formulations: A class of intermediate formulations between big-M and convex hull for disjunctive constraints
Jan Kronqvist
Ruth Misener
Calvin Tsay
41
7
0
10 Feb 2022
Maximizing information from chemical engineering data sets: Applications
  to machine learning
Maximizing information from chemical engineering data sets: Applications to machine learning
Alexander Thebelt
Johannes Wiebe
Jan Kronqvist
Calvin Tsay
Ruth Misener
AI4CE
27
68
0
25 Jan 2022
Mixed-Integer Optimization with Constraint Learning
Mixed-Integer Optimization with Constraint Learning
Donato Maragno
H. Wiberg
Dimitris Bertsimas
Ş. Birbil
D. Hertog
Adejuyigbe O. Fajemisin
51
50
0
04 Nov 2021
1