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Titlebook: Computational Biomechanics for Medicine; Models, Algorithms a Adam Wittek,Karol Miller,Poul M.F. Nielsen Conference proceedings 2013 Spring

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書目名稱Computational Biomechanics for Medicine
副標題Models, Algorithms a
編輯Adam Wittek,Karol Miller,Poul M.F. Nielsen
視頻videohttp://file.papertrans.cn/233/232146/232146.mp4
概述Introduces a novel partnership between surgeons, biomechanical engineers, and experts in computational methods that helps overcome the limitations of traditional surgery.Covers Computer-Integrated Sur
圖書封面Titlebook: Computational Biomechanics for Medicine; Models, Algorithms a Adam Wittek,Karol Miller,Poul M.F. Nielsen Conference proceedings 2013 Spring
描述.One of the greatest challenges for mechanical engineers is to extend the success of computational mechanics to fields outside traditional engineering, in particular to biology, biomedical sciences, and medicine. This book is an opportunity for computational biomechanics specialists to present and exchange opinions on the opportunities of applying their techniques to computer-integrated medicine..Computational Biomechanics for Medicine: Models, Algorithms and Implementation. collects the papers from the Seventh Computational Biomechanics for Medicine Workshop held in Nice in conjunction with the Medical Image Computing and Computer Assisted Intervention conference. The topics covered include: medical image analysis, image-guided surgery, surgical simulation, surgical intervention planning, disease prognosis and diagnostics, injury mechanism analysis, implant and prostheses design, and medical robotics..
出版日期Conference proceedings 2013
關(guān)鍵詞Computer Assisted Intervention; Image-guided Surgery; Injury Mechanism Analysis; MICCAI; Medical Image A
版次1
doihttps://doi.org/10.1007/978-1-4614-6351-1
isbn_softcover978-1-4939-5376-9
isbn_ebook978-1-4614-6351-1
copyrightSpringer Science+Business Media New York 2013
The information of publication is updating

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Ca3(Ti0.5Fe0.5)2(Si0.67Fe0.33)3O12,perative assistance of the surgical gesture. The underlying idea is to use patient-specific biomechanical models during surgery, i.e. in the operating theatre. In that case, three main challenges need to be solved to be compatible with the clinical constraints: (1) a very fast generation of patient-
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Space groups (230) Ia-3d - (219) F-43 c root immediately distal of aortic valve to the junction of the renal arteries. The aortic wall was simplified as a shell structure and assumed to be supported by virtual springs with adjustable stiffness. A structural finite element analysis of the vessel wall and a finite volume-based computationa
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Space groups (218)P-43n - (195) P23ge provides significant benefits in terms of reducing trauma for the patient. This procedure, however, induces risks of damage to the aortic lumen by way of over-expansion of the balloon, exposing the aortic tissue to unsafe levels of loading. Accurate estimates of the induced stress and consequent
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(Na0.75Ca0.25)8Al6[SiO4]6[SO4]2,ion, as well as contact between sutured boundaries. In this work, robust methods are proposed for an efficient finite element-based suture simulation. Contact conditions are modeled using complementarity relations. By exploiting adjacency relationships inherent to simplicial meshes and decomposing r
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