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bioRxiv · 10.1101/318030

The Membranous Labyrinth in vivo from high-resolution Temporal CT data

Abstract

A prerequisite for the modeling and understanding of the inner ear mechanics needs the accurate created membranous labyrinth. I present a semi-automated methodology for accurate reconstruction of the membranous labyrinth in vivo from high-resolution temporal bone CT data of normal human subjects. I created the new technique which was combined with the segmentation methodology, transparent, thresholding, and opacity curve algorithms. This technique allowed the simultaneous multiple image creating without any overlapping regions in the inner ear has been developed. The reconstructed 3D images improved the membranous labyrinth geometry to realistically represent physiologic dimensions. These generated membranous structures were in good agreement with the published ones, while this approach was the most realistic in terms of the membranous labyrinth. The precise volume rendering depends on proprietary algorithms so that different results can be obtained, and the images appear qualitatively different. For each anatomical question, a different visualization technique should be used to obtain an optimal result. All scientists can create the membranous labyrinth in vivo in real time like a retinal camera.\n\nSynopsis O_FIG_DISPLAY_L [Figure 1] M_FIG_DISPLAY Fusion image of the membranous and the bony labyrinth.\n\nInteractive thresholding transparent volume rendering technique is the new method based on the established algorithms. This technique can create the membranous labyrinth in vivo from high-resolution temporal CT data from any scientist. O_LIThe role in the precise volume rendering depended on proprietary algorithms to make 3D histology of the membranous labyrinth from a conventional temporal CT data.\nC_LIO_LIAn intrinsic light transparency of the tissue specification must be taken into account in imaging processing using a specific curve algorithm.\nC_LIO_LIThe 3D in vivo histology can be readily applied to study disease processes and biology of the inner ear without any harmful procedures.\nC_LI\n\nC_FIG_DISPLAY

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Tanioka, H.. 2018-05-09. The Membranous Labyrinth in vivo from high-resolution Temporal CT data. https://doi.org/10.1101/318030

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