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1

Kondoz, Ahmet, and Tasos Dagiuklas, eds. 3D Future Internet Media. New York, NY: Springer New York, 2014. http://dx.doi.org/10.1007/978-1-4614-8373-1.

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2

Kloss, Jo rg. X3D: Programmierung interaktiver 3D-Anwendungen fu r das Internet. Mu nchen/Germany: Addison-Wesley, 2010.

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3

Coelho, Alessandra Martins. Multimedia Networking and Coding: State-of-the Art Motion Estimation in the Context of 3D TV. Cyprus: INTECH, 2013.

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4

Przybilla, Heinz-Jürgen. Modellieren und visualisieren auf Basis geodätisch-photogrammetrischer Messungen: Von der Strichzeichnung über das 3D-Modell zur Darstellung im Internet : Ausgesuchte überarbeitete Vortäge des Jahresseminars "Photogrammetrie/Ingenieurvermessung" des Bildungswerkes VDV am 8. Mai 1998 in Essen. Wiesbaden: Verlag Chmielorz, 1999.

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5

Cappellini, Vito, ed. Electronic Imaging & the Visual Arts. EVA 2015 Florence. Florence: Firenze University Press, 2015. http://dx.doi.org/10.36253/978-88-6655-759-3.

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Information Technologies of interest for Culture Heritage are presented: multimedia systems, data-bases, data protection, access to digital content, Virtual Galleries. Particular reference is reserved to digital images (Electronic Imaging & the Visual Arts), regarding Cultural Institutions (Museums, Libraries, Palace – Monuments, Archaeological Sites). The International Conference includes the following Sessions: Strategic Issues; New Technologies & Applications; New 2D-3D Technical Developments & Applications; Virtual Galleries – Museums and Related Initiatives; Access to the Culture Information. Two Workshops regard: International Cooperation; Innovation and Enterprise.
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6

Cappellini, Vito, ed. Electronic Imaging & the Visual Arts. EVA 2014 Florence. Florence: Firenze University Press, 2014. http://dx.doi.org/10.36253/978-88-6655-573-5.

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Information Technologies of interest for Culture Heritage are presented: multimedia systems, data-bases, data protection, access to digital content, Virtual Galleries. Particular reference is reserved to digital images (Electronic Imaging & the Visual Arts), regarding Cultural Institutions (Museums, Libraries, Palace - Monuments, Archaeological Sites). The International Conference includes the following Sessions: Strategic Issues; EC Projects and Related Networks & Initiatives; 2D - 3D Technologies and Applications; Virtual Galleries - Museums and Related Initiatives; Access to the Culture Information. Three Workshops regard: International Cooperation; Innovation and Enterprise; e.Culture Cloud.
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7

Kondoz, Ahmet, and Tasos Dagiuklas. 3D Future Internet Media. Springer, 2013.

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8

Duke Nukem does the Internet. San Francisco: Sybex, 1997.

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9

Internet e World Wide Web 3D Visual. Berkeley, 1996.

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10

The Internet in 3D: Information, Images and Interaction. Academic Pr, 1997.

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11

Foundation Swift 3D. friends of ED, 2003.

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12

Spencer, Bill, Alex Hallajian, Kris Honeycutt, William McBee, Dave Sharek, and Lumbo Thevathasan. Foundation Swift 3D v3. friends of ED, 2003.

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13

Schryen, Guido. Online-Marktforschung im Mittelstand: Analyse von Konsumentenverhalten in 3D-Internet-Welten. Deutscher Universitätsverlag, 2003.

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14

Online-Marktforschung im Mittelstand: Analyse von Konsumentenverhalten in 3D-Internet-Welten. Wiesbaden: Deutscher Universitätsverlag, 2003.

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15

Li, Rita Yi Man. An Economic Analysis on Automated Construction Safety: Internet of Things, Artificial Intelligence and 3D Printing. Springer, 2017.

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16

Li, Rita Yi Man. An Economic Analysis on Automated Construction Safety: Internet of Things, Artificial Intelligence and 3D Printing. Springer, 2018.

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17

Vlearning Distance Education In The 21st Century Through 3d Virtual Learning Environments. Springer, 2010.

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18

Kari, Pulli, ed. Mobile 3D graphics with OpenGL ES and M3G. Amsterdam: Elsevier/Morgan Kaufmann Publishers, 2008.

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19

I, McNall Ralph, and United States. National Aeronautics and Space Administration., eds. W3D, World Wide Web 3D browser for "surfing the Internet": Final report ... December 15, 1994 thru June 14, 1995. Buffalo, N.Y: Analysis and Simulation, Inc., 1995.

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20

Mobile 3D Graphics: With OpenGL ES and M3G (The Morgan Kaufmann Series in Computer Graphics). Morgan Kaufmann, 2007.

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21

Shiota, Takahiro. 3D Echocardiography. CRC Press LLC, 2020.

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22

3D Echocardiography. Informa Healthcare, 2007.

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23

Maniatis, Lydia M. Symmetry and Uprightness in Visually Perceived Forms. Oxford University Press, 2017. http://dx.doi.org/10.1093/acprof:oso/9780199794607.003.0023.

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Why do some two-dimensional (2D) drawings look three-dimensional (3D)? The answer is because their projection on our retinas is consistent with a 3D percept that has a “better” shape and orientation than the 2D figure. Whenever a retinal projection is interpreted by the visual system as the projection of a surface that is not frontoparallel (i.e., not parallel to the retinal surface), then the retinal image will differ in shape from the source of the projection in (a) the sizes of its internal angles and/or (b) the relative extents of its surfaces. The latter differences arise because, when an extent is assumed to be receding, then it must also be assumed to have undergone foreshortening in the projection. Using pictures, we can show that the visual system likes more, rather than less, mirror symmetry and a vertical axis of symmetry more than a tilted one.
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24

Pivec, Tanja, Tamilselvan Mohan, Rupert Kargl, Manja Kurečič, and Karin Stana Kleinschek. Design, Characterisation and Applications of Cellulose-Based Thin Films, Nanofibers and 3D Printed Structures: A Laboratory Manual. University of Maribor Press, 2021. http://dx.doi.org/10.18690/978-961-286-432-3.

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The introduction of the Laboratory Manual gives the theoretical bases on cellulose and its derivatives, which are used as starting polymers for the preparation of multifunctional polymers with three different advanced techniques - spin coating, electrospinning and 3D printing. In the following, each technique is presented in a separate Lab Exercise. Each exercise covers the theoretical basics on techniques for polymer processing and methods for their characterisation, with an emphasis on the application of prepared materials. The experimental sections contain all the necessary information needed to implement the exercises, while the added results provide students with the help to implement correct and successful exercises and interpret the results.
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25

Takanashi, K., and Y. Sakuraba. Spin polarization in magnets. Oxford University Press, 2017. http://dx.doi.org/10.1093/oso/9780198787075.003.0005.

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This chapter explains how the exchange splitting between up- and down-spin bands in ferromagnets unexceptionally generates spin-polarized electronic states at the Fermi energy. The quantity of spin polarization P in ferromagnets is one of the important parameters for application in spintronics, since a ferromagnet having a higher P is able to generate larger various spin-dependent effects such as the magnetoresistance effect, spin transfer torque, spin accumulation, and so on. However, the spin polarizations of general 3d transition metals or alloys generally limit the size of spin-dependent effects. Thus,“‘half-metals” attract much interest as an ideal source of spin current and spin-dependent scattering because they possess perfectly spin-polarized conduction electrons due to the energy band gap in either the up- or down-spin channel at the Fermi level.
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26

D, Saunders J., and United States. National Aeronautics and Space Administration., eds. 3D Navier-Stokes analysis of a Mach 2.68 bifurcated rectangular mixed-compression inlet. [Washington, DC]: National Aeronautics and Space Administration, 1995.

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27

D, Saunders J., and United States. National Aeronautics and Space Administration., eds. 3D Navier-Stokes analysis of a Mach 2.68 bifurcated rectangular mixed-compression inlet. [Washington, DC]: National Aeronautics and Space Administration, 1995.

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28

D, Saunders J., and United States. National Aeronautics and Space Administration., eds. 3D Navier-Stokes analysis of a Mach 2.68 bifurcated rectangular mixed-compression inlet. [Washington, DC]: National Aeronautics and Space Administration, 1995.

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29

D, Saunders J., and United States. National Aeronautics and Space Administration., eds. 3D Navier-Stokes analysis of a Mach 2.68 bifurcated rectangular mixed-compression inlet. [Washington, DC]: National Aeronautics and Space Administration, 1995.

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30

Forte, Maurizio, and Helena Murteira, eds. Digital Cities. Oxford University Press, 2020. http://dx.doi.org/10.1093/oso/9780190498900.001.0001.

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The guiding premise of this book is the role of the study of the city, its display and dissemination, in the information network of digital cities. A collection of essays on the ways the city can now be studied and presented, this book surveys the current situation in regard to various visualizations of cities of the past and present, built on historical evidence and scientific hypothesis. The chapters reflect the authors’ wide-ranging fields of interest and experience, from archeology to urban planning. Current methods of visualization, including 3D models and virtual reality simulations, are described and critiqued, primarily in regard to the field of cyber-archeology. Thus, the book offers a view of cities in the digital realm as simultaneously memory, imagination, and experience. In this way, it depicts how the ever-changing character of the past, present, and future is reformulated and re-presented in our digital era.
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31

Cao, Gang, and Lance DeLong. Physics of Spin-Orbit-Coupled Oxides. Oxford University Press, 2021. http://dx.doi.org/10.1093/oso/9780199602025.001.0001.

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Prior to 2010, most research on the physics and chemistry of transition metal oxides was dominated by compounds of the 3d-transition elements such as Cr, Mn, Fe, Co, Ni, and Cu. These materials exhibited novel, important phenomena that include giant magnetoresistance in manganites, as well as high-temperature superconductivity in doped La2CuO4 and related cuprates. The discovery in 1994 of an exotic superconducting state in Sr2RuO4 shifted some interest toward ruthenates. Moreover, the realization in 2008 that a novel variant of the classic Mott metal-insulator transition was at play in Sr2IrO4 provided the impetus for a burgeoning group of studies of the influence of strong spin-orbit interactions in “heavy” (4d- and 5d-) transition-element oxides. This book reviews recent experimental and theoretical evidence that the physical and structural properties of 4d- and 5d-oxides are decisively influenced by strong spin-orbit interactions that compete or collaborate with comparable Coulomb, magnetic exchange, and crystalline electric field interactions. The combined effect leads to unusual ground states and magnetic frustration that are unique to this class of materials. Novel couplings between the orbital/lattice and spin degrees of freedom, which lead to unusual types of magnetic order and other exotic phenomena, challenge current theoretical models. Of particular interest are recent investigations of iridates and ruthenates focusing on strong spin-orbit interactions that couple the lattice and spin degrees of freedom.
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