Craig S. Levin

Orcid: 0000-0002-4575-5074

Affiliations:
  • Stanford University, USA


According to our database1, Craig S. Levin authored at least 16 papers between 2008 and 2024.

Collaborative distances:
  • Dijkstra number2 of five.
  • Erdős number3 of four.

Timeline

Legend:

Book 
In proceedings 
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PhD thesis 
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Links

Online presence:

On csauthors.net:

Bibliography

2024
Front-End Electronics for a 100 ps Coincidence Time Resolution TOF-PET Detector With 24-Fold LVDS Timing Channel Multiplexing.
IEEE Trans. Instrum. Meas., 2024

Compact FPGA-Based Data Acquisition System for a High-Channel, High-Count-Rate TOF-PET Insert for Brain PET/MRI.
IEEE Trans. Instrum. Meas., 2024

2018
MR Performance in the Presence of a Radio Frequency-Penetrable Positron Emission Tomography (PET) Insert for Simultaneous PET/MRI.
IEEE Trans. Medical Imaging, 2018

Design and Performance of a 1 mm<sup>3</sup> Resolution Clinical PET System Comprising 3-D Position Sensitive Scintillation Detectors.
IEEE Trans. Medical Imaging, 2018

2017
An Expectation Maximization Method for Joint Estimation of Emission Activity Distribution and Photon Attenuation Map in PET.
IEEE Trans. Medical Imaging, 2017

Robust Timing Calibration for PET Using L1-Norm Minimization.
IEEE Trans. Medical Imaging, 2017

2016
Design Features and Mutual Compatibility Studies of the Time-of-Flight PET Capable GE SIGNA PET/MR System.
IEEE Trans. Medical Imaging, 2016

2013
Distributed MLEM: An Iterative Tomographic Image Reconstruction Algorithm for Distributed Memory Architectures.
IEEE Trans. Medical Imaging, 2013

Sparse Signal Recovery Methods for Multiplexing PET Detector Readout.
IEEE Trans. Medical Imaging, 2013

2012
A single-photon sampling architecture for solid-state imaging
CoRR, 2012

2011
Convex Optimization of Coincidence Time Resolution for a High-Resolution PET System.
IEEE Trans. Medical Imaging, 2011

A Maximum NEC Criterion for Compton Collimation to Accurately Identify True Coincidences in PET.
IEEE Trans. Medical Imaging, 2011

2010
Photo-Detectors for Time of Flight Positron Emission Tomography (ToF-PET).
Sensors, 2010

2009
Fast, Accurate and Shift-Varying Line Projections for Iterative Reconstruction Using the GPU.
IEEE Trans. Medical Imaging, 2009

2008
A Comparison Between a Time Domain and Continuous Wave Small Animal Optical Imaging System.
IEEE Trans. Medical Imaging, 2008

New Imaging Technologies to Enhance the Molecular Sensitivity of Positron Emission Tomography.
Proc. IEEE, 2008


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