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Differentially Variable Component Analysis (dVCA): Identifying Multiple Evoked Components using Trial-to-Trial VariabilityElectric potentials and magnetic fields generated by ensembles of synchronously active neurons in response to external stimuli provide information essential to understanding the processes underlying cognitive and sensorimotor activity. Interpreting recordings of these potentials and fields is difficult as each detector records signals simultaneously generated by various regions throughout the brain. We introduce the differentially Variable Component Analysis (dVCA) algorithm, which relies on trial-to-trial variability in response amplitude and latency to identify multiple components. Using simulations we evaluate the importance of response variability to component identification, the robustness of dVCA to noise, and its ability to characterize single-trial data. Finally, we evaluate the technique using visually evoked field potentials recorded at incremental depths across the layers of cortical area VI, in an awake, behaving macaque monkey.
Document ID
20040012650
Acquisition Source
Ames Research Center
Document Type
Preprint (Draft being sent to journal)
Authors
Knuth, Kevin H.
(NASA Ames Research Center Moffett Field, CA, United States)
Shah, Ankoor S.
(Albert Einstein Coll. of Medicine Bronx, NY, United States)
Truccolo, Wilson
(Brown Univ. Providence, RI, United States)
Ding, Ming-Zhou
(Florida Atlantic Univ. Boca Raton, FL, United States)
Bressler, Steven L.
(Florida Atlantic Univ. Boca Raton, FL, United States)
Schroeder, Charles E.
(Albert Einstein Coll. of Medicine Bronx, NY, United States)
Date Acquired
September 7, 2013
Publication Date
October 8, 2003
Subject Category
Numerical Analysis
Funding Number(s)
CONTRACT_GRANT: NIMH-MH-060358
CONTRACT_GRANT: NIGMS-T-32-M07288
CONTRACT_GRANT: NIMH-MH-42900
CONTRACT_GRANT: NIMH-MH-64204
CONTRACT_GRANT: NSF IBN-00-90717
Distribution Limits
Public
Copyright
Public Use Permitted.
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