Reduction of Energy Required for Defibrillation by Delivering Shocks in Orthogonal Directions in the Dog
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M Duriez | P Auger | P J Birkui | A. Bardou | A L Bardou | J Degonde | J M Chesnais | P. Auger | JEAN DEGONDE | PIERRE J. BIRKUI | JEAN‐MICHEL CHESNAIS | MICHELINE DURIEZ | Jean‐Michel Chesnais | P. Birkui | Micheline Duriez
[1] W A Tacker,et al. Internal cardiac defibrillation in man: pronounced improvement with sequential pulse delivery to two different lead orientations. , 1986, Circulation.
[2] A. M. Scher,et al. Influence of Cardiac Fiber Orientation on Wavefront Voltage, Conduction Velocity, and Tissue Resistivity in the Dog , 1979, Circulation research.
[3] J. Schuder,et al. Experimental ventricular defibrillation with an automatic and completely implanted system. , 1970, Transactions - American Society for Artificial Internal Organs.
[4] K Kelly,et al. Advance prediction of transthoracic impedance in human defibrillation and cardioversion: importance of impedance in determining the success of low-energy shocks. , 1984, Circulation.
[5] R. W. Yakaitis,et al. Influence of pH and hypoxia on the success of defibrillation , 1975, Critical care medicine.
[6] L. Clerc. Directional differences of impulse spread in trabecular muscle from mammalian heart. , 1976, The Journal of physiology.
[7] L. Geddes,et al. The prediction of the impedance of the thorax to defibrillating current. , 1976, Medical instrumentation.