A jet grooming algorithm based on reinforcement learning.
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Updated
Aug 14, 2019 - Python
A jet grooming algorithm based on reinforcement learning.
Generative models for jet substructure.
CycleGan for jet substructure.
Scripts and notebooks for pre-processing jet data into different formats, primarily the jet-image and Lund plane formats. The focus is on datasets used in the Landscape of Top Taggers challenge.
A set of python-based Monte Carlo tools for jet physics, including Monte Carlo integration, parton showering, and examples.
Scripts and notebooks for pre-processing di-jet event data into different formats, primarily the jet-image and Lund plane formats. The focus is on the LHC Olympics 2020 datasets.
Code to use the Latent Dirichlet Allocation probabilistic model to extract sub-classes (topics) from collider data.
Jet Energy Calibration with Deep Learning as a Kubeflow Pipeline
Este código de Python implementa algoritmos para describir distribuciones de Maxwell-Jütnner estacionarias y desplazadas, y su aplicación en el modelo de un sistema de transporte de jets relativistas en un medio intergaláctico magnetizado, por medio de un esquema tipo particle-in-cell (PIC).
Jet Energy Corrections with Graph Neural Network Regression
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