Dissertationen zum Thema „Optical tomography“
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Xu, Weiming. „Offset Optical Coherence Tomography“. Miami University / OhioLINK, 2021. http://rave.ohiolink.edu/etdc/view?acc_num=miami1626870603439104.
Der volle Inhalt der QuelleHuang, David. „Optical coherence tomography“. Thesis, Massachusetts Institute of Technology, 1993. http://hdl.handle.net/1721.1/12675.
Der volle Inhalt der QuelleMuscat, Sarah. „Optical coherence tomography“. Thesis, Connect to e-thesis, 2003. http://theses.gla.ac.uk/630/.
Der volle Inhalt der QuellePh.D. thesis submitted to the Department of Cardiovascular and Medical Sciences, Faculty of Medicine, University of Glasgow, 2003. Includes bibliographical references. Print version also available.
Nam, Haewon. „Ultrasound-modulated optical tomography“. Texas A&M University, 2002. http://hdl.handle.net/1969/448.
Der volle Inhalt der QuelleAkcay, Avni Ceyhun. „System design and optimization of optical coherence tomography“. Doctoral diss., University of Central Florida, 2005. http://digital.library.ucf.edu/cdm/ref/collection/ETD/id/3586.
Der volle Inhalt der QuellePh.D.
Optics and Photonics
Optics
Beitel, David. „Development of optical sources for optical coherence tomography“. Thesis, McGill University, 2007. http://digitool.Library.McGill.CA:80/R/?func=dbin-jump-full&object_id=112557.
Der volle Inhalt der QuelleFrom our experimental results with BBSs, we conclude that: (1) S/C-band output produced by the ASE emitted from two cascaded SOAs can be effectively extended with L-band output produced from the ASE of EDF; (2) An even broader output is achievable by: coupling the C-band and L-band outputs from a C-band SOA and EDF respectively and then amplifying the coupled output through an S-band SOA; (3) OCT imaging systems employing a light source with an S+C+L band output, with a center wavelength of approximately 1520 nm, can achieve high penetration depths in biological tissue.
From our experimental results with SFRLs, we conclude that: (1) Our two SFRL configurations generate picosecond pulses with reasonably narrow linewidths: 0.2--0.5 nm, and a sweeping range of about 50 nm; (2) These SFRLs can function as laser swept sources by setting the driving frequency of the RF generator to a periodic ramping function.
Behrooz, Ali. „Multiplexed fluorescence diffuse optical tomography“. Diss., Georgia Institute of Technology, 2013. http://hdl.handle.net/1853/50401.
Der volle Inhalt der QuelleWatson, Thomas. „Advances in optical projection tomography“. Thesis, Imperial College London, 2017. http://hdl.handle.net/10044/1/58486.
Der volle Inhalt der QuelleBateni, Vahid. „Isogeometric Approach to Optical Tomography“. Diss., Virginia Tech, 2021. http://hdl.handle.net/10919/103863.
Der volle Inhalt der QuelleDoctor of Philosophy
CT scans can save lives by allowing medical practitioners observe inside the patient's body without use of invasive surgery. However, they use high energy, potentially harmful x-rays to penetrate the organs. Due to limits of the mathematical algorithm used to reconstruct the 3D figure of the organs from the 2D x-ray images, many such images are required. Thus, a high level of x-ray exposure is necessary, which in periodic use can be harmful. Optical Tomography is a promising alternative which replaces x-rays with harmless Near-infrared (NIR) visible light. However, NIR photons have lower energy and tend to scatter before leaving the organs. Therefore, an additional algorithm is required to predict the distribution of light photons inside the body and their resulting 2D images. This is called the forward problem of Optical Tomography. Only then, like conventional CT scans, can another algorithm, called the inverse solution, reconstruct the 3D image by diminishing the difference between the predicted and registered images. Currently Optical Tomography cannot replace x-ray CT scans for most cases, due to shortcomings in the forward and inverse algorithms to handle real life usages. One obstacle stems from the fact that the forward problem must be solved numerous times for the inverse solution to reach the correct visualization. However, the current numerical method, Finite Element Method (FEM), has limitations in generating accurate solutions fast enough using economically viable computers. This limitation is mostly caused by the FEM's use of a simpler mathematical construct that requires more computations and is limited in accurately modelling the geometry and shape. This research implements the recently developed Isogeometric Analysis (IGA) and particularly IGA-based FEM to address this issue. The IGA-based FEM uses the same mathematical construct that is used to visualize the geometry for complicated applications such as some animations and computer games. They are also less complicated to apply due to much lower need for partitioning the domain. This study applies the IGA method to solve the forward problem of diffuse Optical Tomography and compare the accuracy and speed of IGA solution to the conventional FEM solution. The comparison reveals that while both methods can reach high accuracy, the IGA solutions are relatively more accurate. Also, while low accuracy FEM solutions have shorter runtimes, in solutions with required higher accuracy levels, the IGA proves to be considerably faster.
Armstrong, Julian. „Anatomical optical coherence tomography in the human upper airway“. University of Western Australia. School of Electrical, Electronic and Computer Engineering, 2007. http://theses.library.uwa.edu.au/adt-WU2007.0022.
Der volle Inhalt der QuelleZuluaga, Andrés Felipe. „Contrast agents for tumor detection with optical coherence tomography /“. Digital version accessible at:, 2000. http://wwwlib.umi.com/cr/utexas/main.
Der volle Inhalt der QuelleTrifanov, Irina. „Fibre optical sources and systems for optical coherence tomography“. Thesis, University of Kent, 2011. http://ethos.bl.uk/OrderDetails.do?uin=uk.bl.ethos.593914.
Der volle Inhalt der QuelleSilva, K. K. M. Buddhika Dilusha. „Optical coherence tomography : technology enhancements and novel applications“. University of Western Australia. School of Electrical, Electronic and Computer Engineering, 2004. http://theses.library.uwa.edu.au/adt-WU2005.0087.
Der volle Inhalt der QuelleRecaldini, Valentino. „Optical diffraction tomography: a resolution study“. Master's thesis, Alma Mater Studiorum - Università di Bologna, 2020. http://amslaurea.unibo.it/21258/.
Der volle Inhalt der QuelleMalmström, Mikael. „Multi-angle Oblique Optical Coherence Tomography“. Thesis, KTH, Laserfysik, 2008. http://urn.kb.se/resolve?urn=urn:nbn:se:kth:diva-72978.
Der volle Inhalt der QuelleLi, Ang. „Diffuse optical tomography with multiple priors /“. Thesis, Connect to Dissertations & Theses @ Tufts University, 2005.
Den vollen Inhalt der Quelle findenAdvisers: David A. Boas; Yaacov Shapira. Submitted to the Dept. of Physics. Includes bibliographical references (leaves 113-126). Access restricted to members of the Tufts University community. Also available via the World Wide Web;
Alex, Aneesh. „Multispectral three-dimensional optical coherence tomography“. Thesis, Cardiff University, 2010. http://orca.cf.ac.uk/54164/.
Der volle Inhalt der QuelleLee, Michael. „Optical diffusion tomography data acquisition system“. Thesis, Massachusetts Institute of Technology, 1995. http://hdl.handle.net/1721.1/36540.
Der volle Inhalt der QuelleHee, Michael Richard. „Optical coherence tomography of the eye“. Thesis, Massachusetts Institute of Technology, 1997. http://hdl.handle.net/1721.1/10263.
Der volle Inhalt der QuelleIncludes bibliographical references (p. 221-230).
by Michael Richard Hee.
Ph.D.
Müller, Paul. „Optical Diffraction Tomography for Single Cells“. Doctoral thesis, Saechsische Landesbibliothek- Staats- und Universitaetsbibliothek Dresden, 2016. http://nbn-resolving.de/urn:nbn:de:bsz:14-qucosa-202261.
Der volle Inhalt der QuelleValdez, Ashley. „Snapshot Spectral Domain Optical Coherence Tomography“. Thesis, The University of Arizona, 2016. http://hdl.handle.net/10150/613413.
Der volle Inhalt der QuelleCong, Alexander Xiao. „Reconstruction Methods for Optical Molecular Tomography“. Diss., Virginia Tech, 2013. http://hdl.handle.net/10919/19253.
Der volle Inhalt der QuelleThis dissertation focuses mainly on the development optical molecular tomography methods based on bioluminescence/fluorescence probes to solve some well-known challenges in this field. Our main results are as follows. We developed a new algorithm for estimation of optical parameters based on the phase-approximation model. Our iterative algorithm takes advantage of both the global search ability of the differential evolution algorithm and the ef"ciency of the conjugate gradient method. We published the first paper on multispectral bioluminescence tomography (BLT). The multispectral BLT approach improves the accuracy and stability of the BLT reconstruction even if data are highly noisy. We established a well-posed inverse source model for optical molecular tomography. Based on this model, we proposed a differential evolution-based reconstruction algorithm to determine the source locations and strengths accurately and reliably. Furthermore, to enhance the spatial resolution of fluorescence molecular tomography, we proposed fluorescence micro-tomography to image cells in a tissue scaffold based on Monte Carlo simulation on a massive parallel processing architecture. Each of these methods shows better performance in numerical simulation, phantom experiments, and mouse studies than the conventional methods.
Ph. D.
Wang, Zhao. „Intravascular Optical Coherence Tomography Image Analysis“. Case Western Reserve University School of Graduate Studies / OhioLINK, 2013. http://rave.ohiolink.edu/etdc/view?acc_num=case1364673682.
Der volle Inhalt der QuelleMeemon, Panomsak. „Development of optical coherence tomography for tissue diagnostics“. Doctoral diss., University of Central Florida, 2010. http://digital.library.ucf.edu/cdm/ref/collection/ETD/id/4558.
Der volle Inhalt der QuelleID: 029050978; System requirements: World Wide Web browser and PDF reader.; Mode of access: World Wide Web.; Thesis (Ph.D.)--University of Central Florida, 2010.; Includes bibliographical references (p. 145-154).
Ph.D.
Doctorate
Optics and Photonics
Faber, Dirk Johannes. „Functional optical coherence tomography spatially resolved measurements of optical properties /“. [S.l. : Amsterdam : s.n.] ; Universiteit van Amsterdam [Host], 2005. http://dare.uva.nl/document/88794.
Der volle Inhalt der QuelleToadere, Florin. „Dispersion in optical configurations and sources for Optical Coherence Tomography“. Thesis, University of Kent, 2017. https://kar.kent.ac.uk/64278/.
Der volle Inhalt der QuelleSiddiqui, Meena. „Optical domain subsampling for data-efficient optical coherence tomography (OCT)“. Thesis, Massachusetts Institute of Technology, 2013. http://hdl.handle.net/1721.1/82390.
Der volle Inhalt der QuelleCataloged from PDF version of thesis.
Includes bibliographical references (p. 97-100).
Recent advances in optical coherence tomography (OCT) have led to higher-speed sources that support imaging over longer depth ranges. Limitations in the bandwidth of state-of-the-art acquisition electronics, however, prevent adoption of these advances into clinical applications. This thesis introduces optical-domain subsampling as a method for increasing the imaging range while reducing the acquisition bandwidth. Optically subsampled lasers utilize a discrete set of wavelengths to alias fringe signals along an extended depth range into a bandwidth limited window. By detecting the complex fringe signals and under the assumption of a depth-constrained signal, optical domain subsampling enables recovery of the depth-resolved scattering signal without overlapping artifacts. Key principles behind subsampled imaging will be discussed, as well as the design criteria for an experimental subsampled laser. A description of the laser, interferometer, data acquisition system, and signal processing steps is given, and the results of point spread functions compressed into a baseband window are presented. Images that were taken with the subsampled OCT system and a wide-field microscope show that this imaging scheme is viable in vivo and can advantageously image samples that span a long depth range.
by Meena Siddiqui.
S.M.
Tearney, Guillermo J. „Optical biopsy of in vivo tissue using optical coherence tomography“. Thesis, Massachusetts Institute of Technology, 1996. http://hdl.handle.net/1721.1/10139.
Der volle Inhalt der QuelleIncludes bibliographical references (leaves 213-220).
by Guillermo James Tearney.
Ph.D.
Fleming, Christine P. „Characterization of Cardiac Tissue Using Optical Coherence Tomography“. Case Western Reserve University School of Graduate Studies / OhioLINK, 2010. http://rave.ohiolink.edu/etdc/view?acc_num=case1270718628.
Der volle Inhalt der QuelleAdie, Steven G. „Enhancement of contrast in optical coherence tomography : new modes, methods and technology“. University of Western Australia. School of Electrical, Electronic and Computer Engineering, 2007. http://theses.library.uwa.edu.au/adt-WU2007.0127.
Der volle Inhalt der QuelleGuggenheim, James A. „Multi-modal diffuse optical tomography and bioluminescence tomography system for preclinical imaging“. Thesis, University of Birmingham, 2014. http://etheses.bham.ac.uk//id/eprint/5278/.
Der volle Inhalt der QuelleTuten, William Scott. „Anterior Segment Optical Coherence Tomography-Based Phakometry Measurements in Children“. The Ohio State University, 2009. http://rave.ohiolink.edu/etdc/view?acc_num=osu1243629782.
Der volle Inhalt der QuelleArmstrong, Julian. „Anatomical optical coherence tomography in the human upper airway /“. Connect to this title, 2006. http://theses.library.uwa.edu.au/adt-WU2007.0022.
Der volle Inhalt der QuelleBachmann, Adrian H. „Phase-locked Fourier domain optical coherence tomography /“. Lausanne : EPFL, 2007. http://library.epfl.ch/theses/?nr=3847.
Der volle Inhalt der QuelleJiao, Shuliang. „Polarization-sensitive Mueller-matrix optical coherence tomography“. Diss., Texas A&M University, 2003. http://hdl.handle.net/1969.1/398.
Der volle Inhalt der QuelleLi, Jun. „Ultrasound-modulated optical tomography for biomedical applications“. Texas A&M University, 2004. http://hdl.handle.net/1969.1/1274.
Der volle Inhalt der QuelleKirillin, M. (Mikhail). „Optical coherence tomography of strongly scattering media“. Doctoral thesis, University of Oulu, 2008. http://urn.fi/urn:isbn:9789514287572.
Der volle Inhalt der QuelleMeer, Freek Jeroen van der. „Vascular applications of quantitative optical coherence tomography“. [S.l. : Amsterdam : s.n.] ; Universiteit van Amsterdam [Host], 2005. http://dare.uva.nl/document/89109.
Der volle Inhalt der QuelleFergusson, James. „Full field swept source optical coherence tomography“. Thesis, Cardiff University, 2013. http://orca.cf.ac.uk/49959/.
Der volle Inhalt der QuelleKwee, Ivo Widjaja. „Towards a Bayesian framework for optical tomography“. Thesis, University College London (University of London), 2000. http://ethos.bl.uk/OrderDetails.do?uin=uk.bl.ethos.325658.
Der volle Inhalt der QuelleByers, Robert. „Clinical applications of angiographic optical coherence tomography“. Thesis, University of Sheffield, 2018. http://etheses.whiterose.ac.uk/21904/.
Der volle Inhalt der QuellePanagiotou, C. „Information theoretic regularization in diffuse optical tomography“. Thesis, University College London (University of London), 2011. http://discovery.ucl.ac.uk/1310436/.
Der volle Inhalt der QuelleTung, Kai-Pin. „Coronary segmentation in intravascular optical coherence tomography“. Thesis, Imperial College London, 2013. http://hdl.handle.net/10044/1/24126.
Der volle Inhalt der QuelleDarrell, Alexander Louis. „Image reconstruction for emission optical projection tomography“. Thesis, University of Oxford, 2010. http://ethos.bl.uk/OrderDetails.do?uin=uk.bl.ethos.566048.
Der volle Inhalt der QuelleArthur, Donna Louise. „Doppler optical coherence tomography for microcirculation studies“. Thesis, University of Manchester, 2014. https://www.research.manchester.ac.uk/portal/en/theses/doppler-optical-coherence-tomography-for-microcirculation-studies(a18d59c3-6cfb-4266-98b1-188040bc120f).html.
Der volle Inhalt der QuelleNurgiyatna, Nurgiyatna. „Tomography imaging based on plastic optical fibre“. Thesis, University of Manchester, 2013. https://www.research.manchester.ac.uk/portal/en/theses/tomography-imaging-based-on-plastic-optical-fibre(481b898a-b1dc-49ae-aa3f-3555a982bb75).html.
Der volle Inhalt der QuelleChang, Whan Wook. „Functional optical coherence tomography for clinical otolaryngology“. Thesis, Boston University, 2013. https://hdl.handle.net/2144/12730.
Der volle Inhalt der QuelleCross-sectional imaging of rapidly vibrating tissues or biomaterials under rapid periodic motion is useful for medical diagnosis and tissue engineering. Optical coheret:tce tomography (OCT) is a powerful technique, but its relatively low frame rates limited its use in such applications. Here, we present a novel method that enables capturing 4-dimensional (4D) images of samples in motion at oscillation frequencies of up to 10kHz and potentially far beyond. Employing continuous axial-line acquisition, motion-triggered beam scanning, and subsequent space-time registration, phase-aligned snapshots of tissue oscillation over the entire vibratory cycle can be obtained. This technique is applied to structural and functional imaging of major systems of speech and hearing: aerodynamically driven vibrations of the vocal fold in an ex vivo calf larynx and acoustically driven vibrations of the middle ear in an ex vivo chinchilla and human cadaveric temporal bones. Oscillations of the surface and interior structure of both organs can be viewed and analyzed with high three-dimensional resolution of 10-15 µm, and temporal resolution of 20 µs· For functional middle ear imaging, we employed phase sensitive OCT to achieve sub-nanometer scale vibration sensitivity to differentiate simulated pathologies. The results suggest that the dynamic 4D OCT technique has the potential to become a powerful tool in clinical and research applications for assessing health and mechanical properties of vocal folds and middle ear in the field of otolaryngology.
Sakadzic, Sava. „Ultrasound-modulated optical tomography in soft biological tissues“. Texas A&M University, 2003. http://hdl.handle.net/1969.1/5875.
Der volle Inhalt der QuellePeric, Borislava. „Optical coherence tomography applied to investigations of optical properties of paintings“. Thesis, Nottingham Trent University, 2008. http://ethos.bl.uk/OrderDetails.do?uin=uk.bl.ethos.510265.
Der volle Inhalt der QuelleMok, Kwok-hei, und 莫國熙. „The characterization of retinal nerve fiber layer thickness in normal,high-tension and normal-tension glaucoma using optical coherencetomography“. Thesis, The University of Hong Kong (Pokfulam, Hong Kong), 2005. http://hub.hku.hk/bib/B31381005.
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