LIGO Document T2300147-v2
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LIGO Seismic State Characterization using Machine Learning Techniques
Document #:
LIGO-T2300147-v2
Document type:
T - Technical notes
Other Versions:
Abstract:
Isaac Kelly SURF 2023 project at UC Riverside.
Files in Document:
Final Report
(Isaac_Kelly_SURF_2023_Final_Report.pdf, 1.4 MB)
Other Files:
Final Presentation
(Isaac Kelly SURF Presentation.pptx, 4.1 MB)
Interim Report 1
(Isaac_Kelly_SURF_2023_Interim_1.pdf, 695.1 kB)
Interim Report 2
(Isaac_Kelly_SURF_2023_Interim_2.pdf, 868.3 kB)
Project Proposal
(Isaac_Kelly_SURF_2023.pdf, 383.4 kB)
Topics:
State Control and Monitoring
Machine Learning
Authors:
Isaac Kelly
Pooyan Goodarzi
Rutuja Gurav
Vagelis Papalexakis
Jonathan Richardson
Keywords:
SURF23
Notes and Changes:
Final report upload
Referenced by:
LIGO-T2300416:
Final reports from LIGO SURF program, Summer 2023
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