Accepted Papers

Poster Session 1

  • Contributed Talk: Provably Efficient Online Hyperparameter Optimization with Population-Based Bandits

Jack Parker-Holder, Vu Nguyen and Stephen Roberts.

PDF

  • MTL2L: A Context Aware Neural Optimiser

Nicholas Kuo, Mehrtash Harandi, Nicolas Fourrier, Christian Walder, Gabriela Ferraro and Hanna Suominen.

PDF

  • AutoGluon-Tabular: Robust and Accurate AutoML for Structured Data

Nick Erickson, Jonas Mueller, Alexander Shirkov, Pedro Larroy, Mu Li and Alex Smola.

PDF

  • Cost-aware Bayesian Optimization

Eric Lee, Valerio Perrone, Cedric Archambeau and Matthias Seeger.

PDF Poster

  • Multi-Source Unsupervised Hyperparameter Optimization

Masahiro Nomura and Yuta Saito.

PDF

  • Regression Networks for Meta-Learning Few-Shot Classification

Arnout Devos and Matthias Grossglauser.

PDF

  • Mining Documentation to Extract Hyperparameter Schemas

Guillaume Baudart, Peter Kirchner, Martin Hirzel and Kiran Kate.

PDF Poster

  • Tiny Video Networks: Architecture Search for Efficient Video Models

Aj Piergiovanni, Anelia Angelova and Michael Ryoo.

PDF

  • Solving Heterogeneous AutoML Problems with AutoGOAL

Suilan Estevez-Velarde, Alejandro Piad-Morffis, Yoan Gutierrez, Andrés Montoyo, Rafael Muñoz and Yudivian Almeida-Cruz.

PDF

  • Bayesian Optimization for Iterative Learning

Vu Nguyen, Sebastian Schulze and Michael Osborne.

PDF Poster

  • Weighted Meta-Learning

Diana Cai, Rishit Sheth, Lester Mackey and Nicolo Fusi.

PDF

  • Stabilizing Bi-Level Hyperparameter Optimization using Moreau-Yosida Regularization

Sauptik Dhar, Unmesh Kurup and Mohak Shah.

PDF Poster

  • Solving Constrained CASH Problems with ADMM

Parikshit Ram, Sijia Liu, Deepak Vijaykeerthi, Dakuo Wang, Djallel Bouneffouf, Gregory Bramble, Horst Samulowitz and Alexander Gray.

PDF

  • A Study on Encodings for Neural Architecture Search

Colin White, Willie Neiswanger, Sam Nolen and Yash Savani.

PDF Poster

  • Multi-fidelity zero-shot HPO

Fela Winkelmolen, Nikita Ivkin, H. Furkan Bozkurt and Zohar Karnin.

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  • Analysis of Imbalance Strategies Recommendation using a Meta-Learning Approach

Afonso José Costa, Miriam Seoane Santos, Carlos Soares and Pedro Henriques Abreu.

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  • Learning to Prune Deep Neural Networks via Reinforcement Learning

Manas Gupta, Siddharth Aravindan, Aleksandra Kalisz, Vijay Chandrasekhar and Lin Jie.

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  • W-EDGE: Weight Updating in Directed Graph Ensembles to improve Classification

Xavier Fontes, Daniel Castro Silva and Pedro Henriques Abreu.

PDF

  • Toward Synergism in Macro Action Ensembles

Yu-Ming Chen, Kuan-Yu Chang, Chien Liu, Tsu-Ching Hsiao, Zhang-Wei Hong and Chun-Yi Lee.

PDF Poster

  • Self-Supervised Prototypical Transfer Learning for Few-Shot Classification

Carlos Medina, Arnout Devos and Matthias Grossglauser.

PDF Poster

Poster Session 2

  • Contributed Talk: Bayesian Optimization with Fairness Constraints

Valerio Perrone, Michele Donini, Krishnaram Kenthapadi and Cédric Archambeau.

PDF

  • Contributed Talk: How far are we from true AutoML: reflection from winning solutions and results of AutoDL challenge

Zhengying Liu, Adrien Pavao, Zhen Xu, Sergio Escalera, Isabelle Guyon, Julio C. S. Jacques Junior, Meysam Madadi and Sebastien Treguer.

PDF Slides

  • Federated Meta-Learning: Democratizing Algorithm Selection Across Disciplines and Software Libraries

Mukesh Arambakam and Joeran Beel.

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  • Towards Algorithm-Agnostic Uncertainty Estimation: Predicting Classification Error in an Automated Machine Learning Setting

Matthias König, Holger Hoos and Jan N. van Rijn.

PDF Poster

  • Local Search is State of the Art for NAS Benchmarks

Colin White, Sam Nolen and Yash Savani.

PDF Poster

  • Geometric Dataset Distances via Optimal Transport

David Alvarez Melis and Nicolo Fusi.

PDF

  • Collecting Empirical Data About Hyperparameters for Data Driven AutoML

Martin Binder, Florian Pfisterer and Bernd Bischl.

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  • Meta-Learning for Recalibration of EMG-Based Upper Limb Prostheses

Krsto Proroković, Michael Wand and Jürgen Schmidhuber.

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  • A Simple Setting for Understanding Neural Architecture Search with Weight-Sharing

Mikhail Khodak, Liam Li, Nicholas Roberts, Maria-Florina Balcan and Ameet Talwalkar.

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  • Meta-SAC: Auto-tune the Entropy Temperature of Soft Actor-Critic via Metagradient

Yufei Wang and Tianwei Ni.

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  • ‘Algorithm-Performance Personas’ for Siamese Meta-Learning and Automated Algorithm Selection

Bryan Tyrrell, Edward Bergman, Gareth Jones and Joeran Beel.

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  • Uncertainty aware Search framework for Multi-Objective Bayesian Optimization with Constraints

Syrine Belakaria, Aryan Deshwal and Janardhan Rao Doppa.

PDF Poster

  • Task-Agnostic Amortized Inference of Gaussian Process Hyperparameters

Sulin Liu, Xingyuan Sun, Peter Ramadge and Ryan Adams.

PDF Poster

  • Bayesian Optimization for real-time, automatic design of face-stimuli in human-centred research

Pedro F da Costa, Romy Lorenz, Ricardo Pio Monti, Emily Jones and Robert Leech.

PDF Poster

  • On Evaluation of AutoML Systems

Mitar Milutinovic, Brandon Schoenfeld, Diego Martinez-Garcia, Saswati Ray, Sujen Shah and David Yan.

PDF Poster

  • H2O AutoML: Scalable Automatic Machine Learning

Erin Ledell and Sebastien Poirier.

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  • RicciNets: Curvature-guided Pruning of High-performance Neural Networks Using Ricci Flow

Samuel Glass, Simeon Spasov and Pietro Lio.

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