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1703.02628
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Global optimization of Lipschitz functions
7 March 2017
C. Malherbe
Nicolas Vayatis
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Papers citing
"Global optimization of Lipschitz functions"
47 / 47 papers shown
Title
Every Call is Precious: Global Optimization of Black-Box Functions with Unknown Lipschitz Constants
Fares Fourati
Salma Kharrat
Vaneet Aggarwal
Mohamed-Slim Alouini
116
0
0
06 Feb 2025
Boosting Soft Q-Learning by Bounding
Jacob Adamczyk
Volodymyr Makarenko
Stas Tiomkin
Rahul V. Kulkarni
OffRL
71
2
0
26 Jun 2024
Task Facet Learning: A Structured Approach to Prompt Optimization
Gurusha Juneja
Gautam Jajoo
Nagarajan Natarajan
Hua Li
Jian Jiao
Amit Sharma
105
10
0
15 Jun 2024
Beyond Trend Following: Deep Learning for Market Trend Prediction
Fernando Berzal
Alberto Garcia
75
0
0
10 Jun 2024
On Safety in Safe Bayesian Optimization
Christian Fiedler
Johanna Menn
Lukas Kreisköther
Sebastian Trimpe
79
11
0
19 Mar 2024
Parameter-Free Algorithms for Performative Regret Minimization under Decision-Dependent Distributions
Sungwoo Park
Junyeop Kwon
Byeongnoh Kim
Suhyun Chae
Jeeyong Lee
Dabeen Lee
76
0
0
23 Feb 2024
Stein Boltzmann Sampling: A Variational Approach for Global Optimization
Gaetan Serré
Argyris Kalogeratos
Nicolas Vayatis
OT
82
1
0
07 Feb 2024
Wave Physics-informed Matrix Factorizations
Harsha Vardhan Tetali
J. Harley
B. Haeffele
70
1
0
21 Dec 2023
A unified weighting framework for evaluating nearest neighbour classification
O. Lenz
Henri Bollaert
Chris Cornelis
26
2
0
28 Nov 2023
Lipschitz Interpolation: Non-parametric Convergence under Bounded Stochastic Noise
J. Huang
Stephen J. Roberts
Jan-Peter Calliess
15
0
0
10 Oct 2023
Max-Sliced Mutual Information
Dor Tsur
Ziv Goldfeld
Kristjan Greenewald
58
10
0
28 Sep 2023
Robustness Analysis of Continuous-Depth Models with Lagrangian Techniques
Sophie A. Neubauer
Radu Grosu
55
0
0
23 Aug 2023
Certified Multi-Fidelity Zeroth-Order Optimization
Étienne de Montbrun
Sébastien Gerchinovitz
86
1
0
02 Aug 2023
Efficient Lipschitzian Global Optimization of Hölder Continuous Multivariate Functions
Kaan Gokcesu
Hakan Gokcesu
18
0
0
24 Mar 2023
Multi-task neural networks by learned contextual inputs
Anders T. Sandnes
B. Grimstad
O. Kolbjørnsen
51
1
0
01 Mar 2023
Global Optimization with Parametric Function Approximation
Chong Liu
Yu Wang
65
7
0
16 Nov 2022
Statistical, Robustness, and Computational Guarantees for Sliced Wasserstein Distances
Sloan Nietert
Ritwik Sadhu
Ziv Goldfeld
Kengo Kato
84
40
0
17 Oct 2022
1
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1
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: A Meta Algorithm for Multivariate Global Optimization via Univariate Optimizers
Kaan Gokcesu
Hakan Gokcesu
89
0
0
06 Sep 2022
Efficient Minimax Optimal Global Optimization of Lipschitz Continuous Multivariate Functions
Kaan Gokcesu
Hakan Gokcesu
31
2
0
06 Jun 2022
Combining Lipschitz and RBF Surrogate Models for High-dimensional Computationally Expensive Problems
J. Kůdela
R. Matousek
43
31
0
29 Apr 2022
Comparative analysis of machine learning methods for active flow control
F. Pino
Lorenzo Schena
Jean Rabault
M. A. Mendez
105
44
0
23 Feb 2022
Low Regret Binary Sampling Method for Efficient Global Optimization of Univariate Functions
Kaan Gokcesu
Hakan Gokcesu
32
11
0
18 Jan 2022
Cumulative Regret Analysis of the Piyavskii--Shubert Algorithm and Its Variants for Global Optimization
Kaan Gokcesu
Hakan Gokcesu
56
11
0
24 Aug 2021
Power of human-algorithm collaboration in solving combinatorial optimization problems
Tapani Toivonen
45
1
0
25 Jul 2021
Wave-Informed Matrix Factorization with Global Optimality Guarantees
Harsha Vardhan Tetali
J. Harley
B. Haeffele
55
1
0
19 Jul 2021
High-Dimensional Simulation Optimization via Brownian Fields and Sparse Grids
Liang Ding
Rui Tuo
Xiaowei Zhang
64
3
0
19 Jul 2021
GoTube: Scalable Stochastic Verification of Continuous-Depth Models
Sophie Gruenbacher
Mathias Lechner
Ramin Hasani
Daniela Rus
T. Henzinger
S. Smolka
Radu Grosu
60
17
0
18 Jul 2021
Query Attack by Multi-Identity Surrogates
Sizhe Chen
Zhehao Huang
Qinghua Tao
Xiaolin Huang
AAML
84
4
0
31 May 2021
Deep Learning for Bayesian Optimization of Scientific Problems with High-Dimensional Structure
Samuel Kim
Peter Y. Lu
Charlotte Loh
Jamie Smith
Jasper Snoek
M. Soljavcić
BDL
AI4CE
377
17
0
23 Apr 2021
Training Deep Neural Networks via Branch-and-Bound
Yuanwei Wu
Ziming Zhang
Guanghui Wang
ODL
57
0
0
05 Apr 2021
Discrepancy-Based Active Learning for Domain Adaptation
Antoine de Mathelin
Francois Deheeger
Mathilde Mougeot
Nicolas Vayatis
89
24
0
05 Mar 2021
Optimised one-class classification performance
O. Lenz
Daniel Peralta
Chris Cornelis
53
4
0
04 Feb 2021
Instance-Dependent Bounds for Zeroth-order Lipschitz Optimization with Error Certificates
François Bachoc
Tommaso Cesari
Sébastien Gerchinovitz
43
10
0
03 Feb 2021
On The Verification of Neural ODEs with Stochastic Guarantees
Sophie Gruenbacher
Ramin Hasani
Mathias Lechner
J. Cyranka
S. Smolka
Radu Grosu
105
33
0
16 Dec 2020
Continuum-Armed Bandits: A Function Space Perspective
Shashank Singh
66
10
0
15 Oct 2020
Exploiting Higher Order Smoothness in Derivative-free Optimization and Continuous Bandits
A. Akhavan
Massimiliano Pontil
Alexandre B. Tsybakov
58
41
0
14 Jun 2020
Regret analysis of the Piyavskii-Shubert algorithm for global Lipschitz optimization
Clément Bouttier
Tommaso Cesari
Mélanie Ducoffe
Sébastien Gerchinovitz
42
15
0
06 Feb 2020
FRaZ: A Generic High-Fidelity Fixed-Ratio Lossy Compression Framework for Scientific Floating-point Data
Robert Underwood
Sheng Di
Jon C. Calhoun
Franck Cappello
27
38
0
17 Jan 2020
Global optimization using Sobol indices
Alexandre Janon
27
1
0
12 Jun 2019
Graduated Optimization of Black-Box Functions
Weijia Shao
C. Geißler
F. Sivrikaya
56
2
0
04 Jun 2019
Derivative-Free Global Optimization Algorithms: Bayesian Method and Lipschitzian Approaches
Jiawei Zhang
16
1
0
19 Apr 2019
A Framework of Transfer Learning in Object Detection for Embedded Systems
Ioannis Athanasiadis
Panagiotis G. Mousouliotis
L. Petrou
ObjD
39
14
0
12 Nov 2018
Combining Bayesian Optimization and Lipschitz Optimization
Mohamed Osama Ahmed
Sharan Vaswani
Mark Schmidt
61
22
0
10 Oct 2018
A simple parameter-free and adaptive approach to optimization under a minimal local smoothness assumption
Peter L. Bartlett
Victor Gabillon
Michal Valko
50
33
0
01 Oct 2018
Predictive Local Smoothness for Stochastic Gradient Methods
Jun Yu Li
Hongfu Liu
Bineng Zhong
Yue Wu
Y. Fu
ODL
41
1
0
23 May 2018
Optimization of Smooth Functions with Noisy Observations: Local Minimax Rates
Yining Wang
Sivaraman Balakrishnan
Aarti Singh
61
25
0
22 Mar 2018
BPGrad: Towards Global Optimality in Deep Learning via Branch and Pruning
Ziming Zhang
Yuanwei Wu
Guanghui Wang
ODL
65
28
0
19 Nov 2017
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