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Signal and noise characteristics of Hahn SE and GE BOLD fMRI at 7 T in humans., , , and . NeuroImage, 24 (3): 738-750 (2005)Characterizing cerebral hemodynamics across the adult lifespan with arterial spin labeling MRI data from the Human Connectome Project-Aging., , , , , , , and . NeuroImage, (2021)Evaluation of slice accelerations using multiband echo planar imaging at 3 T., , , , , , , and . NeuroImage, (2013)Mechanisms underlying decoding at 7 T: Ocular dominance columns, broad structures, and macroscopic blood vessels in V1 convey information on the stimulated eye., , , , and . NeuroImage, 49 (3): 1957-1964 (2010)High-Quality 0.5mm Isotropic fMRI: Random Matrix Theory Meets Physics-Driven Deep Learning., , , , , , , and . NER, page 1-6. IEEE, (2023)Highly-Accelerated High-Resolution Multi-Echo fMRI Using Self-Supervised Physics-Driven Deep Learning Reconstruction., , , , , , and . CAMSAP, page 196-200. IEEE, (2023)The Human Connectome Project: A data acquisition perspective., , , , , , , , , and 17 other author(s). NeuroImage, 62 (4): 2222-2231 (2012)Simultaneous multi-slice Turbo-FLASH imaging with CAIPIRINHA for whole brain distortion-free pseudo-continuous arterial spin labeling at 3 and 7 T., , , , , , , and . NeuroImage, (2015)20-fold Accelerated 7T fMRI Using Referenceless Self-Supervised Deep Learning Reconstruction., , , , , , , , , and . EMBC, page 3765-3769. IEEE, (2021)Clarifying the role of higher-level cortices in resolving perceptual ambiguity using ultra high field fMRI., , , , and . NeuroImage, (2021)