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SLURM-Managed HyperParameter Optimization.

Hyperparameter optimization (HPO) is essential for achieving state-of-the-art performance in machine learning, yet it is computationally demanding, particularly on shared or resource-constrained clusters. We present a system that integrates the Asynchronous Successive Halving Algorithm (ASHA) with SEML, the SLURM Experiment Management Library - an ...
Chattopadhyay, Anusha   +3 more
openaire   +2 more sources

LiDAR-in-the-Loop Hyperparameter Optimization

2023 IEEE/CVF Conference on Computer Vision and Pattern Recognition (CVPR), 2023
Félix Goudreault   +4 more
openaire   +1 more source

Surrogate-Assisted Hybrid-Model Estimation of Distribution Algorithm for Mixed-Variable Hyperparameters Optimization in Convolutional Neural Networks

IEEE Transactions on Neural Networks and Learning Systems, 2023
Jian-Yu Li, Zhi-Hui Zhan, Sam Kwong
exaly  

On Hyperparameter Optimization in Learning Systems.

2019
We study two procedures (reverse-mode and forward-mode) for computing the gradient of the validation error with respect to the hyperparameters of any iterative learning algorithm. These procedures mirror two ways of computing gradients for recurrent neural networks and have different trade-offs in terms of running time and space requirements.
Franceschi L.   +3 more
openaire   +2 more sources

Scalable Meta-Bayesian Based Hyperparameters Optimization for Machine Learning

Communications in Computer and Information Science, 2023
Adeel Ahmad   +2 more
exaly  

How to tune the RBF SVM hyperparameters? An empirical evaluation of 18 search algorithms

Artificial Intelligence Review, 2021
Jacques Wainer   +2 more
exaly  

Computer Optimization of ANN Hyperparameters for Retrospective Information Processing

Lecture Notes in Networks and Systems, 2022
Elena V Melikhova, Aleksey F Rogachev
exaly  

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