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Biomedical Optics Express|July 1, 2022
Machine learning enabled multiple illumination quantitative optoacoustic oximetry imaging in humansThomas Kirchner, Michael Jaeger, Martin FrenzJournal of Biomedical Optics|August 5, 2021
Multiple illumination learned spectral decoloring for quantitative optoacoustic oximetry imagingThomas Kirchner, Martin FrenzUltrasonics|June 27, 2015
Towards clinical computed ultrasound tomography in echo-mode: Dynamic range artefact reductionMichael Jaeger, Martin FrenzIEEE Transactions on Medical Imaging|October 7, 2020
Bayesian Approach for a Robust Speed-of-Sound Reconstruction Using Pulse-Echo UltrasoundPatrick Stahli, Martin Frenz, Michael JaegerPhotoacoustics|October 11, 2014
Clutter elimination for deep clinical optoacoustic imaging using localised vibration tagging (LOVIT)Michael Jaeger, Jeffrey C Bamber, Martin FrenzUltrasonics|June 6, 2020
Improved forward model for quantitative pulse-echo speed-of-sound imagingPatrick Stähli, Maju Kuriakose, Martin Frenz, et al.Journal of Biomedical Optics|November 10, 2009
Reduction of background in optoacoustic image sequences obtained under tissue deformationMichael Jaeger, Lea Siegenthaler, Michael Kitz, et al.Journal of Biomedical Optics|May 25, 2005
Diffraction-free acoustic detection for optoacoustic depth profiling of tissue using an optically transparent polyvinylidene fluoride pressure transducer operated in backward and forward modeMichael Jaeger, Joël J Niederhauser, Marjaneh Hejazi, et al.Physics in Medicine and Biology|May 20, 2015
Full correction for spatially distributed speed-of-sound in echo ultrasound based on measuring aberration delays via transmit beam steeringMichael Jaeger, Elise Robinson, H Günhan Akarçay, et al.Biomedical Optics Express|July 25, 2017
Photoacoustic reflection artifact reduction using photoacoustic-guided focused ultrasound: comparison between plane-wave and element-by-element synthetic backpropagation approachMithun Kuniyil Ajith Singh, Michael Jaeger, Martin Frenz, et al.Pageof 43