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Dissertations / Theses on the topic 'Polarized light imaging'

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1

Ablitt, Barry P. "Characterisation of particles and their scattering effects on polarized light." Thesis, University of Nottingham, 2000. http://ethos.bl.uk/OrderDetails.do?uin=uk.bl.ethos.323186.

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2

Baba, Justin Shekwoga. "The use of polarized light for biomedical applications." Texas A&M University, 2003. http://hdl.handle.net/1969.1/1206.

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Polarized light has the ability to increase the specificity of the investigation of biomedical samples and is finding greater utilization in the fields of medical diagnostics, sensing, and measurement. In particular, this dissertation focuses on the application of polarized light to address a major obstacle in the development of an optical based polarimetric non-invasive glucose detector that has the potential to improve the quality of life and prolong the life expectancy of the millions of people afflicted with the disease diabetes mellitus. By achieving the mapping of the relative variation
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3

Sridhar, Susmita. "Elliptically polarized light for depth resolved diffuse reflectance imaging in biological tissues." Doctoral thesis, Universitat Politècnica de Catalunya, 2016. http://hdl.handle.net/10803/404053.

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Polarization gating imaging is a popular and widely used imaging technique in biomedical optics to sense tissues, deeper volumes, and also selectively probe sub-superficial volumes. Due to the "polarization memory" effect of polarized light, elliptical polarization-gating allows access to tissue layers between those of accessible by linear or circular polarizations. As opposed to the conventional linearly polarized illumination, we focus on polarization gating methods that combine the use of elliptically polarized light to select polarization maintaining photons and eliminate the backgrou
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4

R, S. Umesh. "Algorithms for processing polarization-rich optical imaging data." Thesis, Indian Institute of Science, 2004. http://hdl.handle.net/2005/96.

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This work mainly focuses on signal processing issues related to continuous-wave, polarization-based direct imaging schemes. Here, we present a mathematical framework to analyze the performance of the Polarization Difference Imaging (PDI) and Polarization Modulation Imaging (PMI). We have considered three visualization parameters, namely, the polarization intensity (PI), Degree of Linear Polarization (DOLP) and polarization orientation (PO) for comparing these schemes. The first two parameters appear frequently in literature, possibly under different names. The last parameter, polarization orie
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5

Wiese, Hendrik [Verfasser]. "Enhancing the Signal Interpretation and Microscopical Hardware Concept of 3D Polarized Light Imaging / Hendrik Wiese." Wuppertal : Universitätsbibliothek Wuppertal, 2017. http://d-nb.info/1141413477/34.

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6

Schmitz, Daniel [Verfasser]. "Reconstruction of Three-Dimensional Nerve Fiber Orientations from Histological Brain Sections in Three-Dimensional Polarized Light Imaging / Daniel Schmitz." Wuppertal : Universitätsbibliothek Wuppertal, 2020. http://d-nb.info/1219166766/34.

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7

Dohmen, Melanie [Verfasser]. "Towards the Reconstruction of Fiber Tracts in the Human Brain by Means of 3D Polarized Light Imaging / Melanie Dohmen." Wuppertal : Universitätsbibliothek Wuppertal, 2013. http://d-nb.info/1045118958/34.

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8

Reckfort, Julia [Verfasser]. "New Approaches to the Interpretation of 3D-Polarized Light Imaging Signals for an Advanced Extraction of Fiber Orientation / Julia Reckfort." Wuppertal : Universitätsbibliothek Wuppertal, 2015. http://d-nb.info/1076092543/34.

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9

Tabbi, Giuseppe Teodoro Maria [Verfasser]. "Parallelization of a Data-Driven Independent Component Analysis to Analyze Large 3D-Polarized Light Imaging Data Sets / Giuseppe Teodoro Maria Tabbi." Wuppertal : Universitätsbibliothek Wuppertal, 2016. http://d-nb.info/1120027241/34.

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10

Gecks, Friederike [Verfasser], Hubertus [Akademischer Betreuer] Axer, Ralf [Akademischer Betreuer] Schlösser, and Volker A. [Akademischer Betreuer] Coenen. "Mikrostrukturelle Analyse des anterioren Cingulum-Bündels mittels Polarized Light Imaging (PLI) / Friederike Gecks. Gutachter: Hubertus Axer ; Ralf Schlösser ; Volker A. Coenen." Jena : Thüringer Universitäts- und Landesbibliothek Jena, 2013. http://d-nb.info/1033669474/34.

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11

Menzel, Miriam Verfasser], Kristel Francine [Akademischer Betreuer] Michielsen, Stefan [Akademischer Betreuer] [Weßel, and Katrin [Akademischer Betreuer] Amunts. "Finite-difference time-domain simulations assisting to reconstruct the brain's nerve fiber architecture by 3D polarized light imaging / Miriam Menzel ; Kristel Francine Michielsen, Stefan Weßel, Katrin Amunts." Aachen : Universitätsbibliothek der RWTH Aachen, 2018. http://d-nb.info/1186141255/34.

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12

Menzel, Miriam [Verfasser], Kristel Francine Akademischer Betreuer] Michielsen, Stefan [Akademischer Betreuer] [Weßel, and Katrin [Akademischer Betreuer] Amunts. "Finite-difference time-domain simulations assisting to reconstruct the brain's nerve fiber architecture by 3D polarized light imaging / Miriam Menzel ; Kristel Francine Michielsen, Stefan Weßel, Katrin Amunts." Aachen : Universitätsbibliothek der RWTH Aachen, 2018. http://nbn-resolving.de/urn:nbn:de:101:1-2019051505523563914066.

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13

Desrosiers, Paul Audain. "Simulation de l'imagerie en lumière polarisée : Application à l'étude de l'architecture des "fibres" du myocarde humain." Thesis, Lyon, INSA, 2014. http://www.theses.fr/2014ISAL0046/document.

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La plupart des maladies cardio-vasculaires sont étroitement liées à l’architecture 3D des faisceaux de cardiomyocytes du myocarde humain. Connaitre en détail cette architecture permet de lever un verrou scientifique sur l’organisation spatiale complexe des faisceaux de cardiomyocytes, et offre des pistes pour trouver des solutions pertinentes permettant de guérir ces maladies. A cause de la nature biréfringente des filaments de myosine qui se trouvent dans les cellules cardiomyocyte, l’Imagerie en Lumière Polarisée (ILP) se révèle comme la seule méthode existante permettant d’étudier en détail
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14

Alimi, Abib Olushola Yessou. "Imagerie tridimensionnelle en lumière polarisée : vers une analyse multi-échelle et multimodale avec l'imagerie par résonance magnétique pondérée en diffusion." Thesis, Université Côte d'Azur, 2020. http://www.theses.fr/2020COAZ4025.

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L’Imagerie par Résonance Magnétique pondérée en diffusion (IRMd) est la seule modalité in-vivo et non invasive offrant des informations sur la connectivité structurelle du cerveau humain. Cela est effectué via l’estimation de la distribution des orientations de fibres (FOD) de la matière blanche et leur suivi ou tractographie. Dans cette thèse, l’Imagerie tridimensionnelle en Lumière Polarisée (3D-PLI) est, grâce à sa haute résolution, considérée comme une potentielle technique complémentaire et de validation de l’estimation et du suivi des orientations de fibres par l’IRMd. Ainsi, notre trava
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15

Rosa, Marlise. "SEGMENTAÇÃO DE GRÃOS DE HEMATITA EM AMOSTRAS DE MINÉRIO DE FERRO POR ANÁLISE DE IMAGENS DE LUZ POLARIZADA." Universidade Federal de Santa Maria, 2008. http://repositorio.ufsm.br/handle/1/8064.

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Coordenação de Aperfeiçoamento de Pessoal de Nível Superior<br>The aim of the present work is to classify co-registered pixels of stacks of polarized light images of iron ore into their respective crystalline grains or pores, thus producing grain segmented images that can be analyzed by their size, shape and orientation distributions, as well as their porosity and the size and morphology of the pores. Polished sections of samples of hematite-rich ore are digitally imaged in a rotating polarizer microscope at varying planepolarization angles. An image stack is produced for every field of view,
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16

Kim, Eunha Milner Thomas E. "Tomographic imaging techniques using broadband polarized light for tissue diagnostics." 2005. http://repositories.lib.utexas.edu/bitstream/handle/2152/1950/kime11122.pdf.

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17

Kim, Eunha. "Tomographic imaging techniques using broadband polarized light for tissue diagnostics." Thesis, 2005. http://hdl.handle.net/2152/1950.

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18

Heepe, Jörn [Verfasser]. "Polarized Light Imaging (PLI) des menschlichen Hirnstammes / von Jörn Heepe." 2010. http://d-nb.info/1008454389/34.

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19

Yang, Bin Ph D. "Optical and structural property mapping of soft tissues using spatial frequency domain imaging." Thesis, 2015. http://hdl.handle.net/2152/31345.

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Tissue optical properties, absorption, scattering and fluorescence, reveal important information about health, and holds the potential for non-invasive diagnosis and therefore earlier treatment for many diseases. On the other hand, tissue structure determines its function. Studying tissue structural properties helps us better understand structure-function relationship. Optical imaging is an ideal tool to study these tissue properties. However, conventional optical imaging techniques have limitations, such as not being able to quantitatively evaluate tissue absorption and scattering properties
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20

Hsieh, Yi-Hua, and 謝億樺. "Utilizing Orthogonality of Polarized Light to Enhance One-Shot Full Range FD-OCT Imaging." Thesis, 2008. http://ndltd.ncl.edu.tw/handle/07824832267072096473.

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碩士<br>國立成功大學<br>電腦與通信工程研究所<br>96<br>Most recent development in optical coherence tomography (OCT) placed its emphasis on Fourier domain implementations for in vivo imaging of biological tissues because of its inherent imaging speed and sensitivity advantages. In this thesis, we present a novel optical scheme for a phase shifting method of Fourier domain optical coherence tomography (FD-OCT) system. With orthogonal polarization property, two interference patterns can be recorded simultaneously. It is possible to remove the strong autocorrelation noise inherent in FD-OCT and unwanted auto- and c
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