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Featured researches published by Stephan Zheng.


Journal of Physics: Conference Series | 2018

The HEP.TrkX Project: Deep Learning for Particle Tracking

Aristeidis Tsaris; Dustin Anderson; Josh Bendavid; P. Calafiura; G. B. Cerati; Julien Esseiva; S. Farrell; L. Gray; Keshav Kapoor; Jim Kowalkowski; Mayur Mudigonda; Prabhat; Panagiotis Spentzouris; Maria Spiropoulou; Jean-Roch Vlimant; Stephan Zheng; Daniel Zurawski

Charged particle reconstruction in dense environments, such as the detectors of the High Luminosity Large Hadron Collider (HL-LHC) is a challenging pattern recognition problem. Traditional tracking algorithms, such as the combinatorial Kalman Filter, have been used with great success in HEP experiments for years. However, these state-of-the-art techniques are inherently sequential and scale quadratically or worse with increased detector occupancy. The HEP.TrkX project is a pilot project with the aim to identify and develop cross-experiment solutions based on machine learning algorithms for track reconstruction. Machine learning algorithms bring a lot of potential to this problem thanks to their capability to model complex non-linear data dependencies, to learn effective representations of high-dimensional data through training, and to parallelize easily on high-throughput architectures such as FPGAs or GPUs. In this paper we present the evolution and performance of our recurrent (LSTM) and convolutional neural networks moving from basic 2D models to more complex models and the challenges of scaling up to realistic dimensionality/sparsity.


neural information processing systems | 2016

Generating Long-term Trajectories Using Deep Hierarchical Networks

Stephan Zheng; Yisong Yue; Patrick Lucey


arXiv: Learning | 2018

Long-term Forecasting using Tensor-Train RNNs

Rose Yu; Stephan Zheng; Anima Anandkumar; Yisong Yue


Archive | 2017

Fine-Grained Retrieval of Sports Plays using Tree-Based Alignment of Trajectories.

Long Sha; Patrick Lucey; Stephan Zheng; Taehwan Kim; Yisong Yue; Sridha Sridharan


EPJ Web of Conferences | 2017

The HEP.TrkX Project: deep neural networks for HL-LHC online and offline tracking

S. Farrell; Dustin Anderson; P. Calafiura; G. B. Cerati; L. Gray; Jim Kowalkowski; Mayur Mudigonda; Prabhat; Panagiotis Spentzouris; Maria Spiropoulou; Aristeidis Tsaris; Jean-Roch Vlimant; Stephan Zheng


arXiv: Learning | 2018

Multi-resolution Tensor Learning for Large-Scale Spatial Data

Stephan Zheng; Rose Yu; Yisong Yue


arXiv: Learning | 2018

Detecting Adversarial Examples via Neural Fingerprinting.

Sumanth Dathathri; Stephan Zheng; Richard M. Murray; Yisong Yue


arXiv: Learning | 2018

Generative Multi-Agent Behavioral Cloning.

Eric Zhan; Stephan Zheng; Yisong Yue; Long Sha; Patrick Lucey


arXiv: High Energy Physics - Experiment | 2018

Novel deep learning methods for track reconstruction

S. Farrell; Prabhat; Mayur Mudigonda; P. Calafiura; Aristeidis Tsaris; Jim Kowalkowski; L. Gray; Panagiotis Spentzouris; G. B. Cerati; Josh Bendavid; Stephan Zheng; Jean-Roch Vlimant; M. Spiropulu; Dustin Anderson


Archive | 2018

Structured Exploration via Hierarchical Variational Policy Networks

Stephan Zheng; Yisong Yue

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Yisong Yue

California Institute of Technology

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Aristeidis Tsaris

California Institute of Technology

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Dustin Anderson

California Institute of Technology

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Jean-Roch Vlimant

California Institute of Technology

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Mayur Mudigonda

Lawrence Berkeley National Laboratory

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P. Calafiura

Lawrence Berkeley National Laboratory

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