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Javier Duarte

3 accepted papers

2024

Locality-Sensitive Hashing-Based Efficient Point Transformer with Applications in High-Energy Physics

ICML 2024oral

This study introduces a novel transformer model optimized for large-scale point cloud processing in scientific domains such as high-energy physics (HEP) and astrophysics. Addressing the limitations of graph neural networks and standard transformers, our model integrates local inductive bias and achi…

2021

MLPerf Tiny Benchmark

NeurIPS 2021poster

Advancements in ultra-low-power tiny machine learning (TinyML) systems promise to unlock an entirely new class of smart applications. However, continued progress is limited by the lack of a widely accepted and easily reproducible benchmark for these systems. To meet this need, we present MLPerf Tiny…

Cited by 246SourceScholar
2021

Particle Cloud Generation with Message Passing Generative Adversarial Networks

NeurIPS 2021poster

In high energy physics (HEP), jets are collections of correlated particles produced ubiquitously in particle collisions such as those at the CERN Large Hadron Collider (LHC). Machine learning (ML)-based generative models, such as generative adversarial networks (GANs), have the potential to signific…

Cited by 75SourcePDFScholar