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P Rüegsegger

Researcher at École Polytechnique Fédérale de Lausanne

Publications -  41
Citations -  8416

P Rüegsegger is an academic researcher from École Polytechnique Fédérale de Lausanne. The author has contributed to research in topics: Cancellous bone & Quantitative computed tomography. The author has an hindex of 27, co-authored 41 publications receiving 7994 citations.

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A new method for the model-independent assessment of thickness in three-dimensional images

TL;DR: A general thickness definition for arbitrary structures is proposed allowing us to calculate the mean structure thickness and the thickness distribution of 3‐D objects in a direct way and independently of an assumed structure model.
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Direct three-dimensional morphometric analysis of human cancellous bone: microstructural data from spine, femur, iliac crest, and calcaneus.

TL;DR: Based on the direct 3D analysis of human bone biopsies, it appears that samples with a lower bone mass are primarily characterized by a smaller plate‐to‐rod ratio, and to a lesser extent by thinner trabecular elements.
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Quantification of Bone Microarchitecture with the Structure Model Index.

TL;DR: In this paper, a morphometric parameter called Structure Model Index (SMI) is introduced, which makes it possible to quantify the characteristic form of a three-dimensionalally described structure in terms of the amount of plates and rods composing the structure.
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The ability of three-dimensional structural indices to reflect mechanical aspects of trabecular bone.

TL;DR: The results suggest that the determination of mechanical properties of bone and the diagnosis of osteoporosis can be improved if, in addition to BMD, the 3D bone microarchitecture is assessed in vivo.
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Estimation of distal radius failure load with micro-finite element analysis models based on three-dimensional peripheral quantitative computed tomography images.

TL;DR: It is concluded that application of the techniques investigated here can lead to a better prediction of the bone failure load for bone in vivo than is possible from DXA measurements, structural parameters, or a combination thereof.