Craig S. Henriquez

Orcid: 0000-0002-5395-3767

According to our database1, Craig S. Henriquez authored at least 28 papers between 1996 and 2021.

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

Timeline

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On csauthors.net:

Bibliography

2021
A Kernel-free Boundary Integral Method for the Bidomain Equations.
CoRR, 2021

2018
Microheterogeneity-induced conduction slowing and wavefront collisions govern macroscopic conduction behavior: A computational and experimental study.
PLoS Comput. Biol., 2018

A Scalable Weight-Free Learning Algorithm for Regulatory Control of Cell Activity in Spiking Neuronal Networks.
Int. J. Neural Syst., 2018

2017
Unified thalamic model generates multiple distinct oscillations with state-dependent entrainment by stimulation.
PLoS Comput. Biol., 2017

Modeling an Excitable Biosynthetic Tissue with Inherent Variability for Paired Computational-Experimental Studies.
PLoS Comput. Biol., 2017

2016
Continuous Models Fail to Capture Details of Reentry in Fibrotic Myocardium.
Proceedings of the Computing in Cardiology, CinC 2016, Vancouver, 2016

2014
A Brief History of Tissue Models For Cardiac Electrophysiology.
IEEE Trans. Biomed. Eng., 2014

The Effect of Random Cell Decoupling on Electrogram Morphology near the Percolation Threshold in Microstructural Models of Cardiac Tissue.
Proceedings of the Computing in Cardiology, CinC 2014, 2014

2013
Effect of Gap Junction Uncoupling on Spatial Dispersion of Action Potential Duration at Sites of Abrupt TissueExpansion.
Proceedings of the Computing in Cardiology, 2013

Spike-based indirect training of a spiking neural network-controlled virtual insect.
Proceedings of the 52nd IEEE Conference on Decision and Control, 2013

2012
Emergent bursting and synchrony in computer simulations of neuronal cultures.
Frontiers Comput. Neurosci., 2012

A Radial Basis Function Spike Model for Indirect Learning via Integrate-and-Fire Sampling and Reconstruction Techniques.
Adv. Artif. Neural Syst., 2012

2010
Indirect training of a spiking neural network for flight control via spike-timing-dependent synaptic plasticity.
Proceedings of the 49th IEEE Conference on Decision and Control, 2010

2009
Modulation of Conduction Velocity by Nonmyocytes in the Low Coupling Regime.
IEEE Trans. Biomed. Eng., 2009

2008
Efficient Fully Implicit Time Integration Methods for Modeling Cardiac Dynamics.
IEEE Trans. Biomed. Eng., 2008

Biologically realizable reward-modulated hebbian training for spiking neural networks.
Proceedings of the International Joint Conference on Neural Networks, 2008

2007
Hybrid Finite Element Method for Describing the Electrical Response of Biological Cells to Applied Fields.
IEEE Trans. Biomed. Eng., 2007

A kernel-free boundary integral method for elliptic boundary value problems.
J. Comput. Phys., 2007

2006
Field Stimulation of Cells in Suspension: Use of a Hybrid Finite Element Method.
Proceedings of the 28th International Conference of the IEEE Engineering in Medicine and Biology Society, 2006

2005
Analytical model of extracellular potentials in a tissue slab with a finite bath.
IEEE Trans. Biomed. Eng., 2005

Finite volume stiffness matrix for solving anisotropic cardiac propagation in 2-D and 3-D unstructured meshes.
IEEE Trans. Biomed. Eng., 2005

Confounded spikes generated by synchrony within neural tissue models.
Neurocomputing, 2005

2003
A numerical scheme for modeling wavefront propagation on a monolayer of arbitrary geometry.
IEEE Trans. Biomed. Eng., 2003

2002
A simulator for the analysis of neuronal ensemble activity: application to reaching tasks.
Neurocomputing, 2002

Simulated atrial fibrillation in a computer model of human atria.
Proceedings of the 14th International Conference on Digital Signal Processing, 2002

2000
Discretization of Anisotropic Convection-diffusion Equations, Convective M-matrices and their Iterative Solution.
VLSI Design, 2000

Computer Simulations of Cardiac Electrophysiology.
Proceedings of the Proceedings Supercomputing 2000, 2000

1996
Using computer models to understand the roles of tissue structure and membrane dynamics in arrhythmogenesis.
Proc. IEEE, 1996


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