关注
Yasir Alanazi
Yasir Alanazi
Thomas Jefferson National Accelerator Facility
在 jlab.org 的电子邮件经过验证
标题
引用次数
引用次数
年份
Simulation of electron-proton scattering events by a Feature-Augmented and Transformed Generative Adversarial Network (FAT-GAN)
Y Alanazi, N Sato, T Liu, W Melnitchouk, P Ambrozewicz, F Hauenstein, ...
https://www.ijcai.org/proceedings/2021/293, 2020
712020
A survey of machine learning-based physics event generation
Y Alanazi, N Sato, P Ambrozewicz, ANH Blin, W Melnitchouk, ...
https://www.ijcai.org/proceedings/2021/588, 2021
242021
Variational autoencoder inverse mapper: An end-to-end deep learning framework for inverse problems
M Almaeen, Y Alanazi, N Sato, W Melnitchouk, MP Kuchera, Y Li
2021 International Joint Conference on Neural Networks (IJCNN), 1-8, 2021
202021
Machine learning-based event generator for electron-proton scattering
Y Alanazi, P Ambrozewicz, M Battaglieri, AN Hiller Blin, MP Kuchera, Y Li, ...
Physical Review D 106 (9), 096002, 2022
17*2022
cFAT-GAN: Conditional Simulation of Electron–Proton Scattering Events with Variate Beam Energies by a Feature Augmented and Transformed Generative Adversarial Network
L Velasco, E McClellan, N Sato, P Ambrozewicz, T Liu, W Melnitchouk, ...
Deep Learning Applications, Volume 3, 245-261, 2022
132022
Point cloud-based variational autoencoder inverse mappers (pc-vaim)-an application on quantum chromodynamics global analysis
M Almaeen, Y Alanazi, N Sato, W Melnitchouk, Y Li
2022 21st IEEE International Conference on Machine Learning and Applications …, 2022
72022
Proceedings of the Thirtieth International Joint Conference on Artificial Intelligence
Y Alanazi, N Sato, T Liu, W Melnitchouk, P Ambrozewicz, F Hauenstein, ...
International Joint Conferences on Artificial Intelligence Organization, 2021
62021
Robust errant beam prognostics with conditional modeling for particle accelerators
K Rajput, M Schram, W Blokland, Y Alanazi, P Ramuhalli, A Zhukov, ...
Machine Learning: Science and Technology 5 (1), 015044, 2024
52024
Toward a generative modeling analysis of CLAS exclusive photoproduction
T Alghamdi, Y Alanazi, M Battaglieri, Ł Bibrzycki, AV Golda, AN Hiller Blin, ...
Physical Review D 108 (9), 094030, 2023
42023
Multi-module-based CVAE to predict HVCM faults in the SNS accelerator
Y Alanazi, M Schram, K Rajput, S Goldenberg, L Vidyaratne, C Pappas, ...
Machine Learning with Applications 13, 100484, 2023
42023
Investigating anomalies in compute clusters: An unsupervised learning approach
Y Lu, J Ren, Y Alanazi, A Mohammed, D McSpadden, L Hild, M Jones, ...
SC23 2, 2024
12024
Dataset for Investigating Anomalies in Compute Clusters
D McSpadden, Y Alanazi, B Hess, L Hild, M Jones, Y Lub, A Mohammed, ...
arXiv preprint arXiv:2311.16129, 2023
12023
Errant Beam Prognostics with Machine Leaning at SNS Accelerator
K Rajput, M Schram, W Blokland, Y Alanazi, P Ramuhalli, A Zhukov, ...
Thomas Jefferson National Accelerator Facility (TJNAF), Newport News, VA …, 2024
2024
Machine Learning-Based Event Generator
Y Alanazi
Old Dominion University, 2022
2022
VAIM for Solving Inverse Problems
M Almaeen, Y Alanazi, M Kuchera, N Sato, W Melnitchouk, Y Li
2021
End-to-end physics event generator
Y Alanazi, N Sato, T Liu, W Melnitchouk, MP Kuchera, E Pritchard, ...
2021
Application of Generative Adverserial Networks to electron-proton scattering
P Ambrozewicz, Y Alanazi, M Kuchera, Y Li, T Liu, E McClellan, ...
APS April Meeting Abstracts 2021, H15. 006, 2021
2021
Using machine learning techniques to interface between experimental cross sections and QCD theory parameters
E Tsitinidi, R Shahid, Y Alanazi, M Almaeen, M Kuchera, Y Li, ...
APS Division of Nuclear Physics Meeting Abstracts 2020, HA. 005, 2020
2020
Using neural networks to generate cross section data from theoretical QCD parameters
R Shahid, E Tsitinidi, Y Alanazi, M Almaeen, M Kuchera, Y Li, ...
APS Division of Nuclear Physics Meeting Abstracts 2020, JA. 005, 2020
2020
Machine learning methods for predictions in the future Electron-Ion Collider
MP Kuchera, Y Alanazi, M Almaeen, M Houck, T Liu, E McClellan, ...
APS Division of Nuclear Physics Meeting Abstracts 2019, FE. 004, 2019
2019
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