@article{GoubergritsWeberPetzetal.2009, author = {Goubergrits, Leonid and Weber, Sarah and Petz, Christoph and Spuler, Andreas and P{\"o}thke, Jens and Berthe, Andr{\´e} and Hege, Hans-Christian}, title = {Wall-PIV as a Near Wall Flow Validation Tool for CFD}, volume = {12}, journal = {Journal of Visualization}, number = {3}, pages = {241 -- 250}, year = {2009}, language = {en} } @article{LindowBaumHege2011, author = {Lindow, Norbert and Baum, Daniel and Hege, Hans-Christian}, title = {Voronoi-Based Extraction and Visualization of Molecular Paths}, volume = {17}, journal = {IEEE Transactions on Visualization and Computer Graphics}, number = {12}, doi = {10.1109/TVCG.2011.259}, pages = {2025 -- 2034}, year = {2011}, language = {en} } @article{SchmidtEhrenbergBaumHege2001, author = {Schmidt-Ehrenberg, Johannes and Baum, Daniel and Hege, Hans-Christian}, title = {Visually stunning - Molecular conformations}, volume = {23}, journal = {The Biochemist}, number = {5}, pages = {22 -- 26}, year = {2001}, language = {en} } @inproceedings{SchmidtEhrenbergBaumHege2002, author = {Schmidt-Ehrenberg, Johannes and Baum, Daniel and Hege, Hans-Christian}, title = {Visualizing Dynamic Molecular Conformations}, booktitle = {Proceedings of IEEE Visualization 2002}, editor = {J. Moorhead, Robert and Gross, Markus and I. Joy, Kenneth}, publisher = {IEEE Computer Society Press}, address = {Boston MA, USA}, doi = {10.1109/VISUAL.2002.1183780}, pages = {235 -- 242}, year = {2002}, language = {en} } @inproceedings{KaehlerProhaskaHutanuetal.2005, author = {K{\"a}hler, Ralf and Prohaska, Steffen and Hutanu, Andrei and Hege, Hans-Christian}, title = {Visualization of time-dependent remote adaptive mesh refinement data}, booktitle = {Proc. IEEE Visualization 2005}, address = {Minneapolis, USA}, doi = {10.1109/VISUAL.2005.1532793}, pages = {175 -- 182}, year = {2005}, language = {en} } @article{KozlikovaKroneFalketal.2016, author = {Kozl{\´i}kov{\´a}, Barbora and Krone, Michael and Falk, Martin and Lindow, Norbert and Baaden, Marc and Baum, Daniel and Viola, Ivan and Parulek, Julius and Hege, Hans-Christian}, title = {Visualization of Biomolecular Structures: State of the Art Revisited}, volume = {36}, journal = {Computer Graphics Forum}, number = {8}, doi = {10.1111/cgf.13072}, pages = {178 -- 204}, year = {2016}, abstract = {Structural properties of molecules are of primary concern in many fields. This report provides a comprehensive overview on techniques that have been developed in the fields of molecular graphics and visualization with a focus on applications in structural biology. The field heavily relies on computerized geometric and visual representations of three-dimensional, complex, large and time-varying molecular structures. The report presents a taxonomy that demonstrates which areas of molecular visualization have already been extensively investigated and where the field is currently heading. It discusses visualizations for molecular structures, strategies for efficient display regarding image quality and frame rate, covers different aspects of level of detail and reviews visualizations illustrating the dynamic aspects of molecular simulation data. The survey concludes with an outlook on promising and important research topics to foster further success in the development of tools that help to reveal molecular secrets.}, language = {en} } @article{ProhaskaHegeGiehletal.2002, author = {Prohaska, Steffen and Hege, Hans-Christian and Giehl, Michael and Gowin, Wolfgang}, title = {Visual Analysis of Trabecular Bone Structure}, volume = {9 (1)}, journal = {Journal of Gravitational Physiology}, pages = {171 -- 172}, year = {2002}, language = {en} } @inproceedings{SchmidtEhrenbergHege2005, author = {Schmidt-Ehrenberg, Johannes and Hege, Hans-Christian}, title = {Visual analysis of molecular conformations by means of a dynamic density mixture model}, volume = {3695}, booktitle = {Computational Life Sciences: First International Symposium, CompLife 2005}, publisher = {Springer}, address = {Konstanz, Germany}, pages = {229 -- 240}, year = {2005}, language = {en} } @article{KroneKozlikovaLindowetal.2016, author = {Krone, Michael and Kozl{\´i}kov{\´a}, Barbora and Lindow, Norbert and Baaden, Marc and Baum, Daniel and Parulek, Julius and Hege, Hans-Christian and Viola, Ivan}, title = {Visual Analysis of Biomolecular Cavities: State of the Art}, volume = {35}, journal = {Computer Graphics Forum}, number = {3}, issn = {1467-8659}, doi = {10.1111/cgf.12928}, pages = {527 -- 551}, year = {2016}, abstract = {In this report we review and structure the branch of molecular visualization that is concerned with the visual analysis of cavities in macromolecular protein structures. First the necessary background, the domain terminology, and the goals of analytical reasoning are introduced. Based on a comprehensive collection of relevant research works, we present a novel classification for cavity detection approaches and structure them into four distinct classes: grid-based, Voronoi-based, surface-based, and probe-based methods. The subclasses are then formed by their combinations. We match these approaches with corresponding visualization technologies starting with direct 3D visualization, followed with non-spatial visualization techniques that for example abstract the interactions between structures into a relational graph, straighten the cavity of interest to see its profile in one view, or aggregate the time sequence into a single contour plot. We also discuss the current state of methods for the visual analysis of cavities in dynamic data such as molecular dynamics simulations. Finally, we give an overview of the most common tools that are actively developed and used in the structural biology and biochemistry research. Our report is concluded by an outlook on future challenges in the field.}, language = {en} } @article{MahnkeArltBaumetal.2020, author = {Mahnke, Heinz-Eberhard and Arlt, Tobias and Baum, Daniel and Hege, Hans-Christian and Herter, Felix and Lindow, Norbert and Manke, Ingo and Siopi, Tzulia and Menei, Eve and Etienne, Marc and Lepper, Verena}, title = {Virtual unfolding of folded papyri}, volume = {41}, journal = {Journal of Cultural Heritage}, publisher = {Elsevier}, doi = {10.1016/j.culher.2019.07.007}, pages = {264 -- 269}, year = {2020}, abstract = {The historical importance of ancient manuscripts is unique since they provide information about the heritage of ancient cultures. Often texts are hidden in rolled or folded documents. Due to recent impro- vements in sensitivity and resolution, spectacular disclosures of rolled hidden texts were possible by X-ray tomography. However, revealing text on folded manuscripts is even more challenging. Manual unfolding is often too risky in view of the fragile condition of fragments, as it can lead to the total loss of the document. X-ray tomography allows for virtual unfolding and enables non-destructive access to hid- den texts. We have recently demonstrated the procedure and tested unfolding algorithms on a mockup sample. Here, we present results on unfolding ancient papyrus packages from the papyrus collection of the Mus{\´e}e du Louvre, among them objects folded along approximately orthogonal folding lines. In one of the packages, the first identification of a word was achieved, the Coptic word for "Lord".}, language = {en} } @inproceedings{PaetschBaumEhrigetal.2012, author = {Paetsch, Olaf and Baum, Daniel and Ehrig, Karsten and Meinel, Dietmar and Prohaska, Steffen}, title = {Vergleich automatischer 3D-Risserkennungsmethoden f{\"u}r die quantitative Analyse der Schadensentwicklung in Betonproben mit Computer-Tomographie}, booktitle = {Tagungsband der DACH Jahrestagung 2012}, year = {2012}, language = {de} } @inproceedings{PetzStallingGoubergritsetal.2004, author = {Petz, Christoph and Stalling, Detlev and Goubergrits, Leonid and Affeld, Klaus and Spuler, Andreas}, title = {Validierung von Str{\"o}mungssimulationen in kardiovaskul{\"a}ren Anwendungen}, booktitle = {Bildverabeitung f{\"u}r die Medizin 2004}, editor = {Tolxdorff, Thomas}, pages = {356 -- 360}, year = {2004}, language = {en} } @misc{KnoetelSeidelHosnyetal.2016, author = {Kn{\"o}tel, David and Seidel, Ronald and Hosny, Ahmed and Zaslansky, Paul and Weaver, James C. and Baum, Daniel and Dean, Mason N.}, title = {Understanding the Tiling Rules of the Tessellated Mineralized Endoskeleton of Sharks and Rays}, journal = {Poster, Euro Bio-inspired Materials 2016, Potsdam, Germany, February 22 - 25, 2016}, year = {2016}, abstract = {The endoskeletons of sharks and rays are composed of an unmineralized cartilaginous core, covered in an outer layer of mineralized tiles called tesserae. The tessellated layer is vital to the growth as well as the material properties of the skeletal element, providing both flexibility and strength. However, characterizing the relationship between tesseral size and shape, and skeletal growth and mechanics is challenging because tesserae are small (a few hundred micrometers wide), anchored to the surrounding tissue in complex three-dimensional ways, and occur in huge numbers. Using a custom-made semi-automatic segmentation algorithm, we present the first quantitative and three-dimensional description of tesserae in micro-CT scans of whole skeletal elements. Our segmentation algorithm relies on aspects we have learned of general tesseral morphology. We exploit the distance map of the mineralized layer to separate individual tiles using a hierarchical watershed algorithm. Additionally, we have developed post-processing techniques to quickly correct segmentation errors. Our data reveals that the tessellation is not regular, with tesserae showing a great range of shapes, sizes and number of neighbors. This is partly region-dependent: for example, thick, columnar tesserae are arranged in series along convex edges with small radius of curvature (RoC), whereas more brick-or disc-shaped tesserae are found in planar areas. We apply our newly developed techniques on the left and right hyomandibula (skeletal elements supporting the jaws) from four different ages of a stingray species, to clarify how tiling patterns develop across ontogeny and differ within and between individuals. We evaluate the functional consequences of tesseral morphologies using finite element analysis and 3d-printing, for a better understanding of shark skeletal mechanics, but also to extract fundamental engineering design principles of tiling arrangements on load-bearing three-dimensional objects.}, language = {en} } @incollection{PoethkowHege2012, author = {P{\"o}thkow, Kai and Hege, Hans-Christian}, title = {Uncertainty Propagation in DT-MRI Anisotropy Isosurface Extraction}, booktitle = {New Developments in the Visualization and Processing of Tensor Fields}, editor = {Laidlaw, David and Vilanova, Anna}, publisher = {Springer}, address = {Berlin}, pages = {209 -- 225}, year = {2012}, language = {en} } @article{SeidelBlumerZaslanskyetal.2017, author = {Seidel, Ronald and Blumer, Michael and Zaslansky, Paul and Kn{\"o}tel, David and Huber, Daniel R. and Weaver, James C. and Fratzl, Peter and Omelon, Sidney and Bertinetti, Luca and Dean, Mason N.}, title = {Ultrastructural, material and crystallographic description of endophytic masses - a possible damage response in shark and ray tessellated calcified cartilage}, journal = {Journal of Structural Biology}, doi = {10.1016/j.jsb.2017.03.004}, year = {2017}, abstract = {The cartilaginous endoskeletons of Elasmobranchs (sharks and rays) are reinforced superficially by minute, mineralized tiles, called tesserae. Unlike the bony skeletons of other vertebrates, elasmobranch skeletons have limited healing capability and their tissues' mechanisms for avoiding damage or managing it when it does occur are largely unknown. Here we describe an aberrant type of mineralized elasmobranch skeletal tissue called endophytic masses (EPMs), which grow into the uncalcified cartilage of the skeleton, but exhibit a strikingly different morphology compared to tesserae and other elasmobranch calcified tissues. We use biological and materials characterization techniques, including computed tomography, electron and light microscopy, x-ray and Raman spectroscopy and histology to characterize the morphology, ultrastructure and chemical composition of tesserae-associated EPMs in different elasmobranch species. EPMs appear to develop between and in intimate association with tesserae, but lack the lines of periodic growth and varying mineral density characteristic of tesserae. EPMs are mineral-dominated (high mineral and low organic content), comprised of birefringent bundles of large monetite or brushite crystals aligned end to end in long strings. Both Unusual skeletal mineralization in elasmobranchs tesserae and EPMs appear to develop in a type-2 collagen-based matrix, but in contrast to tesserae, all chondrocytes embedded or in contact with EPMs are dead and mineralized. The differences outlined between EPMs and tesserae demonstrate them to be distinct tissues. We discuss several possible reasons for EPM development, including tissue reinforcement, repair, and disruptions of mineralization processes, within the context of elasmobranch skeletal biology as well as descriptions of damage responses of other vertebrate mineralized tissues.}, language = {en} } @article{TorsneyWeirSaadMoelleretal.2011, author = {Torsney-Weir, Thomas and Saad, Ahmed and M{\"o}ller, Torsten and Hege, Hans-Christian and Weber, Britta and Verbavatz, Jean-Marc}, title = {Tuner: Principled Parameter Finding for Image Segmentation Algorithms Using Visual Response Surface Exploration}, volume = {17}, journal = {IEEE Trans. Vis. Comput. Graph.}, number = {12}, pages = {1892 -- 1901}, year = {2011}, language = {en} } @article{HegeWeinkaufProhaskaetal.2005, author = {Hege, Hans-Christian and Weinkauf, Tino and Prohaska, Steffen and Hutanu, Andrei}, title = {Towards distributed visualization and analysis of large flow data}, volume = {48 (2)}, journal = {JSME International Journal, Series B}, pages = {241 -- 246}, year = {2005}, language = {en} } @incollection{HlawitschkaHotzKratzetal.2014, author = {Hlawitschka, Mario and Hotz, Ingrid and Kratz, Andrea and Marai, G. Elisabeta and Moreno, Rodrigo and Scheuermann, Gerik and Stommel, Markus and Wiebel, Alexander and Zhang, Eugene}, title = {Top Challenges in the Visualization of Engineering Tensor Fields}, booktitle = {Visualization and Processing of Tensors and Higher-Order Descriptors for Multi-Field Data}, editor = {Westin, Carl-Frederic and Burgeth, Bernhard and Vilanova, Anna}, publisher = {Springer}, pages = {3 -- 15}, year = {2014}, language = {en} } @inproceedings{DeanSeidelKnoeteletal.2016, author = {Dean, Mason N. and Seidel, R. and Kn{\"o}tel, David and Lyons, K. and Baum, Daniel and Weaver, James C. and Fratzl, Peter}, title = {To build a shark: 3D tiling laws of tessellated cartilage}, volume = {56 (suppl 1)}, booktitle = {Abstract in Integrative and Comparative Biology; conference Society of Integrative and Comparative Biology annual meeting, January 3-7, 2016, Portland, USA}, year = {2016}, abstract = {The endoskeleton of sharks and rays (elasmobranchs) is comprised of a cartilaginous core, covered by thousands of mineralized tiles, called tesserae. Characterizing the relationship between tesseral morphometrics, skeletal growth and mechanics is challenging because tesserae are small (a few hundred micrometers wide), anchored to the surrounding tissue in complex three-dimensional ways, and occur in huge numbers. We integrate material property, histology, electron microscopy and synchrotron and laboratory µCT scans of skeletal elements from an ontogenetic series of round stingray Urobatis halleri, to gain insights into the generation and maintenance of a natural tessellated system. Using a custom-made semiautomatic segmentation algorithm, we present the first quantitative and 3d description of tesserae across whole skeletal elements. The tessellation is not interlocking or regular, with tesserae showing a great range of shapes, sizes and number of neighbors. This is partly region-dependent: for example, thick, columnar tesserae are arranged in series along convex edges with small radius of curvature (RoC), whereas more brick- or disc-shaped tesserae are found in planar/flatter areas. Comparison of the tessellation across ontogeny, shows that in younger animals, the forming tesseral network is less densely packed, appearing as a covering of separate, poorly mineralized islands that grow together with age to form a complete surface. Some gaps in the tessellation are localized to specific regions in all samples, indicating they are real features, perhaps either regions of delayed mineralization or of tendon insertion. We will use the structure of elasmobranch skeletons as a road map for understanding shark and ray skeletal mechanics, but also to extract fundamental engineering principles for tiled composite materials.}, language = {en} } @article{OberleithnerSieberNayerietal.2011, author = {Oberleithner, Kilian and Sieber, Moritz and Nayeri, Christian and Paschereit, Christian and Petz, Christoph and Hege, Hans-Christian and Noack, Bernd and J. Wygnanski, Israel}, title = {Three-dimensional Coherent Structures of the Swirling Jet Undergoing Vortex breakdown: Stability Analysis and Empirical Mode Construction}, volume = {679}, journal = {J. Fluid Mech.}, doi = {10.1017/jfm.2011.141}, pages = {383 -- 414}, year = {2011}, language = {en} } @misc{RedemannWeberMoelleretal.2014, author = {Redemann, Stefanie and Weber, Britta and M{\"o}ller, Marit and Verbavatz, Jean-Marc and Hyman, Anthony and Baum, Daniel and Prohaska, Steffen and M{\"u}ller-Reichert, Thomas}, title = {The Segmentation of Microtubules in Electron Tomograms Using Amira}, journal = {Mitosis: Methods and Protocols}, publisher = {Springer}, doi = {10.1007/978-1-4939-0329-0_12}, pages = {261 -- 278}, year = {2014}, language = {en} } @inproceedings{ClasenHege2006, author = {Clasen, Malte and Hege, Hans-Christian}, title = {Terrain rendering using spherical clipmaps}, booktitle = {EuroVis 2006 - Eurographics / IEEE VGTC Symposium on Visualization}, pages = {91 -- 98}, year = {2006}, language = {en} } @inproceedings{ReininghausGuentherHotzetal.2010, author = {Reininghaus, Jan and G{\"u}nther, David and Hotz, Ingrid and Prohaska, Steffen and Hege, Hans-Christian}, title = {TADD: A Computational Framework for Data Analysis Using Discrete Morse Theory}, volume = {6327}, booktitle = {Mathematical Software - ICMS 2010}, publisher = {Springer}, doi = {10.1007/978-3-642-15582-6_35}, pages = {198 -- 208}, year = {2010}, language = {en} } @article{ThomsenLaibKolleretal.2005, author = {Thomsen, Jesper and Laib, Andreas and Koller, Bruno and Prohaska, Steffen and Mosekilde, L. and Gowin, Wolfgang}, title = {Stereological measures of trabecular bone structure: Comparison of 3D micro computed tomography with 2D histological sections in human proximal tibial bone biopsies}, volume = {218}, journal = {Journal of Microscopy}, pages = {171 -- 179}, year = {2005}, language = {en} } @article{GoubergritsSchallerKertzscheretal.2012, author = {Goubergrits, Leonid and Schaller, Jens and Kertzscher, Ulrich and van den Bruck, Nils and P{\"o}thkow, Kai and Petz, Christoph and Hege, Hans-Christian and Spuler, Andreas}, title = {Statistical wall shear stress maps of ruptured and unruptured middle cerebral artery aneurysms}, volume = {9}, journal = {J. R. Soc. Interface}, number = {69}, doi = {10.1098/rsif.2011.0490}, pages = {677 -- 688}, year = {2012}, language = {en} } @inproceedings{FouardMalandainProhaskaetal.2004, author = {Fouard, C{\´e}line and Malandain, Gr{\´e}goire and Prohaska, Steffen and Westerhoff, Malte and Cassot, Francis and Mazel, Christophe and Asselot, Didier and Marc-Vergnes, Jean-Pierre}, title = {Squelettisation par blocs pour des grands volumes de donn{\´e}es 3D}, booktitle = {Reconnaissance des Formes et Intelligence Artificielle (RFIA 2004)}, address = {Toulouse, France}, year = {2004}, language = {en} } @article{FabigKiewiszLindowetal.2020, author = {Fabig, Gunar and Kiewisz, Robert and Lindow, Norbert and Powers, James A. and Cota, Vanessa and Quintanilla, Luis J. and Brugu{\´e}s, Jan and Prohaska, Steffen and Chu, Diana S. and M{\"u}ller-Reichert, Thomas}, title = {Sperm-specific meiotic chromosome segregation in C. elegans}, volume = {9}, journal = {eLife}, doi = {10.7554/eLife.50988}, pages = {e50988}, year = {2020}, language = {en} } @inproceedings{FouardMalandainProhaskaetal.2004, author = {Fouard, C{\´e}line and Malandain, Gr{\´e}goire and Prohaska, Steffen and Westerhoff, Malte and Cassot, Francis and Mazel, Christophe and Asselot, Didier and Marc-Vergnes, Jean-Pierre}, title = {Skeletonization by blocks for large 3D datasets: Application to brain microcirculation}, booktitle = {IEEE International Symposium on Biomedical Imaging: From Nano to Macro (ISBI'04)}, address = {Arlington, Virginia}, doi = {10.1109/ISBI.2004.1398481}, pages = {89 -- 92}, year = {2004}, language = {en} } @misc{HorenkoSchmidtEhrenbergSchuette2006, author = {Horenko, Illia and Schmidt-Ehrenberg, Johannes and Sch{\"u}tte, Christof}, title = {Set-oriented dimension reduction: Localizing principal component analysis via hidden Markov models}, volume = {4216}, journal = {Computational Life Sciences II}, publisher = {Springer}, pages = {98 -- 115}, year = {2006}, language = {en} } @article{WeinkaufGuenther2009, author = {Weinkauf, Tino and G{\"u}nther, David}, title = {Separatrix Persistence: Extraction of Salient Edges on Surfaces Using Topological Methods}, volume = {28}, journal = {Computer Graphics Forum (Proc. SGP'09)}, number = {5}, doi = {10.1111/j.1467-8659.2009.01528.x}, pages = {1519 -- 1528}, year = {2009}, language = {en} } @article{LindowBruenigDercksenetal.2020, author = {Lindow, Norbert and Br{\"u}nig, Florian and Dercksen, Vincent J. and Fabig, Gunar and Kiewisz, Robert and Redemann, Stefanie and M{\"u}ller-Reichert, Thomas and Prohaska, Steffen and Baum, Daniel}, title = {Semi-automatic stitching of filamentous structures in image stacks from serial-section electron tomography}, journal = {bioRxiv}, doi = {10.1101/2020.05.28.120899}, year = {2020}, abstract = {We present a software-assisted workflow for the alignment and matching of filamentous structures across a 3D stack of serial images. This is achieved by combining automatic methods, visual validation, and interactive correction. After an initial alignment, the user can continuously improve the result by interactively correcting landmarks or matches of filaments. Supported by a visual quality assessment of regions that have been already inspected, this allows a trade-off between quality and manual labor. The software tool was developed to investigate cell division by quantitative 3D analysis of microtubules (MTs) in both mitotic and meiotic spindles. For this, each spindle is cut into a series of semi-thick physical sections, of which electron tomograms are acquired. The serial tomograms are then stitched and non-rigidly aligned to allow tracing and connecting of MTs across tomogram boundaries. In practice, automatic stitching alone provides only an incomplete solution, because large physical distortions and a low signal-to-noise ratio often cause experimental difficulties. To derive 3D models of spindles despite the problems related to sample preparation and subsequent data collection, semi-automatic validation and correction is required to remove stitching mistakes. However, due to the large number of MTs in spindles (up to 30k) and their resulting dense spatial arrangement, a naive inspection of each MT is too time consuming. Furthermore, an interactive visualization of the full image stack is hampered by the size of the data (up to 100 GB). Here, we present a specialized, interactive, semi-automatic solution that considers all requirements for large-scale stitching of filamentous structures in serial-section image stacks. The key to our solution is a careful design of the visualization and interaction tools for each processing step to guarantee real-time response, and an optimized workflow that efficiently guides the user through datasets.}, language = {en} } @article{OberleithnerSieberNayerietal.2010, author = {Oberleithner, Kilian and Sieber, Moritz and Nayeri, Christian and Paschereit, Christian and Petz, Christoph and Hege, Hans-Christian and Noack, Bernd and Wygnanski, Israel}, title = {Self Excited Oscillations in Swirling Jets: Stability Analysis and Empirical Mode Construction}, volume = {55}, journal = {Bulletin of the American Physical Society}, number = {16}, pages = {GE.00008}, year = {2010}, language = {en} } @article{SoaresBaumHesseetal.2020, author = {Soares, Ana Prates and Baum, Daniel and Hesse, Bernhard and Kupsch, Andreas and M{\"u}ller, Bernd and Zaslansky, Paul}, title = {Scattering and phase-contrast X-ray methods reveal damage to glass fibers in endodontic posts following dental bur trimming}, volume = {37}, journal = {Dental Materials}, number = {2}, doi = {10.1016/j.dental.2020.10.018}, pages = {201 -- 211}, year = {2020}, language = {en} } @article{BaumLindowHegeetal.2017, author = {Baum, Daniel and Lindow, Norbert and Hege, Hans-Christian and Lepper, Verena and Siopi, Tzulia and Kutz, Frank and Mahlow, Kristin and Mahnke, Heinz-Eberhard}, title = {Revealing hidden text in rolled and folded papyri}, volume = {123}, journal = {Applied Physics A}, number = {3}, doi = {10.1007/s00339-017-0808-6}, pages = {171}, year = {2017}, abstract = {Ancient Egyptian papyri are often folded, rolled up or kept as small packages, sometimes even sealed. Physically unrolling or unfolding these packages might severely damage them. We demonstrate a way to get access to the hidden script without physical unfolding by employing computed tomography and mathematical algorithms for virtual unrolling and unfolding. Our algorithmic approaches are combined with manual interaction. This provides the necessary flexibility to enable the unfolding of even complicated and partly damaged papyrus packages. In addition, it allows us to cope with challenges posed by the structure of ancient papyrus, which is rather irregular, compared to other writing substrates like metallic foils or parchment. Unfolding of packages is done in two stages. In the first stage, we virtually invert the physical folding process step by step until the partially unfolded package is topologically equivalent to a scroll or a papyrus sheet folded only along one fold line. To minimize distortions at this stage, we apply the method of moving least squares. In the second stage, the papyrus is simply flattened, which requires the definition of a medial surface. We have applied our software framework to several papyri. In this work, we present the results of applying our approaches to mockup papyri that were either rolled or folded along perpendicular fold lines. In the case of the folded papyrus, our approach represents the first attempt to address the unfolding of such complicated folds.}, language = {en} } @inproceedings{ProhaskaHutanu2005, author = {Prohaska, Steffen and Hutanu, Andrei}, title = {Remote data access for interactive visualization}, booktitle = {13th Annual Mardi Gras Conference: Frontiers of Grid Applications and Technologies}, pages = {17 -- 22}, year = {2005}, language = {en} } @misc{HoerthBaumKnoeteletal.2015, author = {Hoerth, Rebecca M. and Baum, Daniel and Kn{\"o}tel, David and Prohaska, Steffen and Willie, Bettina M. and Duda, Georg and Hege, Hans-Christian and Fratzl, Peter and Wagermaier, Wolfgang}, title = {Registering 2D and 3D Imaging Data of Bone during Healing}, issn = {1438-0064}, url = {http://nbn-resolving.de/urn:nbn:de:0297-zib-53426}, year = {2015}, abstract = {Purpose/Aims of the Study: Bone's hierarchical structure can be visualized using a variety of methods. Many techniques, such as light and electron microscopy generate two-dimensional (2D) images, while micro computed tomography (μCT) allows a direct representation of the three-dimensional (3D) structure. In addition, different methods provide complementary structural information, such as the arrangement of organic or inorganic compounds. The overall aim of the present study is to answer bone research questions by linking information of different 2D and 3D imaging techniques. A great challenge in combining different methods arises from the fact that they usually reflect different characteristics of the real structure. Materials and Methods: We investigated bone during healing by means of μCT and a couple of 2D methods. Backscattered electron images were used to qualitatively evaluate the tissue's calcium content and served as a position map for other experimental data. Nanoindentation and X-ray scattering experiments were performed to visualize mechanical and structural properties. Results: We present an approach for the registration of 2D data in a 3D μCT reference frame, where scanning electron microscopies serve as a methodic link. Backscattered electron images are perfectly suited for registration into μCT reference frames, since both show structures based on the same physical principles. We introduce specific registration tools that have been developed to perform the registration process in a semi-automatic way. Conclusions: By applying this routine, we were able to exactly locate structural information (e.g. mineral particle properties) in the 3D bone volume. In bone healing studies this will help to better understand basic formation, remodeling and mineralization processes.}, language = {en} } @misc{GowinSaparinFelsenbergetal.2002, author = {Gowin, Wolfgang and Saparin, Peter and Felsenberg, Dieter and Kurths, J{\"u}rgen and Zaikin, Alexei and Prohaska, Steffen and Hege, Hans-Christian}, title = {Regional Structural Skeletal Discordance Assessed by Measures of Complexity}, year = {2002}, language = {en} } @article{SaparinThomsenProhaskaetal.2005, author = {Saparin, Peter and Thomsen, Jesper and Prohaska, Steffen and Zaikin, Alexei and Kurths, J{\"u}rgen and Hege, Hans-Christian and Gowin, Wolfgang}, title = {Quantification of spatial structure of human proximal tibial bone biopsies using 3D measures of complexity}, volume = {56}, journal = {Acta Astronautica}, number = {9-12}, doi = {10.1016/j.actaastro.2005.01.007}, pages = {820 -- 830}, year = {2005}, language = {en} } @inproceedings{SaparinGowinZaikinetal.2003, author = {Saparin, Peter and Gowin, Wolfgang and Zaikin, Alexei and Thomsen, Jesper and Prohaska, Steffen and Hege, Hans-Christian and Kurths, J{\"u}rgen}, title = {Quantification of Changes in Spatial Structure of Human Bone Biopsies Using 3D Measures of Complexity}, booktitle = {14th IAA Humans in Space Symposium}, address = {Banff, Alberta, Canada}, year = {2003}, language = {en} } @inproceedings{SaparinGowinZaikinetal.2003, author = {Saparin, Peter and Gowin, Wolfgang and Zaikin, Alexei and Prohaska, Steffen}, title = {Quantification of changes in human bone structure at different skeletal locations using measures of complexity}, booktitle = {2nd European Congress 'Achievements in Space Medicine into Health Care Practice and Industry'}, address = {Berlin-Adlershof}, year = {2003}, language = {en} } @article{PoethkowWeberHege2011, author = {P{\"o}thkow, Kai and Weber, Britta and Hege, Hans-Christian}, title = {Probabilistic Marching Cubes}, volume = {30}, journal = {Computer Graphics Forum}, number = {3}, doi = {10.1111/j.1467-8659.2011.01942.x}, pages = {931 -- 940}, year = {2011}, language = {en} } @article{PetzPoethkowHege2012, author = {Petz, Christoph and P{\"o}thkow, Kai and Hege, Hans-Christian}, title = {Probabilistic Local Features in Uncertain Vector Fields with Spatial Correlation}, volume = {31}, journal = {Computer Graphics Forum}, number = {3}, pages = {1045 -- 1054}, year = {2012}, language = {en} } @article{LindowBaumHege2012, author = {Lindow, Norbert and Baum, Daniel and Hege, Hans-Christian}, title = {Perceptually Linear Parameter Variations}, volume = {31}, journal = {Computer Graphics Forum}, number = {2}, doi = {10.1111/j.1467-8659.2012.03054.x target}, pages = {535 -- 544}, year = {2012}, language = {en} } @inproceedings{RitterProhaskaBrandetal.2011, author = {Ritter, Zully and Prohaska, Steffen and Brand, R. and Friedmann, A. and Hege, Hans-Christian and Goebbels, J{\"u}rgen and Felsenberg, Dieter}, title = {Osteocytes number and volume in osteoporotic and in healthy bone biopsies analysed using Synchrotron CT: a pilot study}, booktitle = {Proc. 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