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RIS citation export for THPME188: Using Principal Component Analysis to Find Correlations and Patterns at Diamond Light Source

TY - CONF
AU - Bloomer, C.
AU - Rehm, G.
ED - Petit-Jean-Genaz, Christine
ED - Arduini, Gianluigi
ED - Michel, Peter
ED - Schaa, Volker RW
TI - Using Principal Component Analysis to Find Correlations and Patterns at Diamond Light Source
J2 - Proc. of IPAC2014, Dresden, Germany, June 15-20, 2014
C1 - Dresden, Germany
T2 - International Particle Accelerator Conference
T3 - 5
LA - english
AB - Principal component analysis is a powerful data analysis tool, capable of reducing large complex data sets containing many variables. Examination of the principal components set allows the user to spot underlying trends and patterns that might otherwise be masked in a very large volume of data, or hidden in noise. Diamond Light Source archives many gigabytes of machine data every day, far more than any one human could effectively search through for correlations. Presented in this paper are some of the results from running principal component analysis on years of archived data in order to find underlying correlations that may otherwise have gone unnoticed. The advantages and limitations of the technique are discussed.
PB - JACoW
CP - Geneva, Switzerland
SP - 3719
EP - 3721
KW - electron
KW - storage-ring
KW - data-analysis
KW - vacuum
DA - 2014/07
PY - 2014
SN - 978-3-95450-132-8
DO - 10.18429/JACoW-IPAC2014-THPME188
UR - http://jacow.org/ipac2014/papers/thpme188.pdf
ER -