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It is important that the clinician be prepared and familiar with the technology to prevent misunderstandings and incorrect interpretations of the images.Īdvances in our field have relied on 3D data for new discoveries.

Interpretation of the superimposition results depends on the structure of reference used for registration. The 3D superimpositions provide assessments of growth, changes with treatment, stability evaluations, improved diagnoses of asymmetry, tooth morphologies and relative positions, quantitative and qualitative analyses of skeletal and tooth displacements, and temporomandibular joint evaluations, among other applications. Advanced applications of 3D imaging techniques, including virtual models from cone-beam computed tomography (CBCT), stereophotometry, and intraoral or indirect scanners, can be used for applications in dentistry that now allow superimpositions for populational and individual longitudinal assessments. More effective and rational clinical decision making for orthodontic and orthognathic surgery patients requires careful 3-dimensional (3D) image-analysis techniques. HighlightsĮlsevier has made a 3D viewer available to AJO-DO authors and readers.įigures can be downloaded and imported into other programs. Such interaction with 3D models in online articles now will give readers and authors better understanding and visualization of the results.
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When submitting manuscripts, authors can now upload 3D models that will allow readers to interact with or download them. The interpretation of 3D overlays and quantitative color-coded maps requires basic knowledge of 3D image analysis.
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Overlays and color-coded distance maps can be displayed using the reader’s software of choice, allowing graphic assessment of the location and direction of changes or morphologic differences relative to the structure of reference. These 3D graphic displays are represented in the print version as 2D snapshots. The 3D surface models are available in the article’s online version for viewing and downloading using the reader’s software of choice. In this study, we describe possible ways to visualize the surface models constructed from cone-beam computed tomography images using 2D and 3D figures. vtk file format and loaded in the Elsevier 3D viewer. ResultsĪll registered 3D surface models in this study were saved in. vtk file formats and used for overlays, quantification of differences in each of the 3 planes of space, or color-coded graphic displays of 3D surface distances. The registered 3D volumetric label maps can be saved in. The anatomic structures of interest in the scans can be labeled with color (3D volumetric label maps), and then the scans are registered in a common coordinate system using a target region as the reference. Cone-beam computed tomography scans were acquired as volumetric images that can be visualized as 3D projected images or used to construct polygonal meshes or surfaces of specific anatomic structures of interest.
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Three-dimensional image analysis methods include image acquisition, construction of surface models, registration in a common coordinate system, visualization of overlays, and quantification of changes.
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The aims of this article are to introduce the capability to view and interact with 3-dimensional (3D) surface models in online publications, and to describe how to prepare surface models for such online 3D visualizations.
