AbstractThe heart is not only our most vital, but also our most complex organ: Precisely controlled by the interplay of electrical and mechanical fields, it consists of four chambers and four valves, which act in concert to regulate its filling, ejection, and overall pump function. While numerous computational models exist to study either the electrical or the mechanical response of its individual chambers, the integrative electro-mechanical response of the whole heart remains poorly understood. Here we present a proof-of-concept simulator for a four-chamber human heart model created from computer topography and magnetic resonance images. We illustrate the governing equations of excitation–contraction coupling and discretize them using a si...
This paper describes an electrical model of cardiac ventricles incorporating real geometry and motio...
iv The heart is an essential heterogeneous organ that depends on strong coupling be-tween electrical...
The human heart beats as a result of multiscale nonlinear dynamics coupling subcellular to whole org...
AbstractThe heart is not only our most vital, but also our most complex organ: Precisely controlled ...
Mathematical modelling of the human heart and its function can expand our understanding of various c...
Mathematical modelling of the human heart and its function can expand our understanding of various c...
Mathematical modeling of the human heart and its function can expand our understanding of various ca...
Mathematical modeling of the human heart and its function can expand our understanding of various ca...
Mathematical modeling of the human heart and its function can expand our understanding of various ca...
Mathematical modeling of the human heart and its function can expand our understanding of various ca...
Mathematical modeling of the human heart and its function can expand our understanding of various ca...
This repository contains a four-chamber model of the human heart which is ready to use for simulatio...
We present a virtual heart model simulating the flow in the left human ventricle and in the aorta. B...
We present a virtual heart model simulating the flow in the left human ventricle and in the aorta. B...
International audienceThis paper presents a new three-dimensional electromechanical model of the two...
This paper describes an electrical model of cardiac ventricles incorporating real geometry and motio...
iv The heart is an essential heterogeneous organ that depends on strong coupling be-tween electrical...
The human heart beats as a result of multiscale nonlinear dynamics coupling subcellular to whole org...
AbstractThe heart is not only our most vital, but also our most complex organ: Precisely controlled ...
Mathematical modelling of the human heart and its function can expand our understanding of various c...
Mathematical modelling of the human heart and its function can expand our understanding of various c...
Mathematical modeling of the human heart and its function can expand our understanding of various ca...
Mathematical modeling of the human heart and its function can expand our understanding of various ca...
Mathematical modeling of the human heart and its function can expand our understanding of various ca...
Mathematical modeling of the human heart and its function can expand our understanding of various ca...
Mathematical modeling of the human heart and its function can expand our understanding of various ca...
This repository contains a four-chamber model of the human heart which is ready to use for simulatio...
We present a virtual heart model simulating the flow in the left human ventricle and in the aorta. B...
We present a virtual heart model simulating the flow in the left human ventricle and in the aorta. B...
International audienceThis paper presents a new three-dimensional electromechanical model of the two...
This paper describes an electrical model of cardiac ventricles incorporating real geometry and motio...
iv The heart is an essential heterogeneous organ that depends on strong coupling be-tween electrical...
The human heart beats as a result of multiscale nonlinear dynamics coupling subcellular to whole org...