Search Results - "Gelikonov, G. V"

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  1. 1

    In vivo OCT imaging of hard and soft tissue of the oral cavity by Feldchtein, F, Gelikonov, V, Iksanov, R, Gelikonov, G, Kuranov, R, Sergeev, A, Gladkova, N, Ourutina, M, Reitze, D, Warren, J

    Published in Optics express (14-09-1998)
    “…We use optical coherence tomography (OCT) to perform a comprehensive program of in vivo and in vitro structural imaging of hard and soft tissues within the…”
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  2. 2

    Accurate early prediction of tumour response to PDT using optical coherence angiography by Sirotkina, M. A., Moiseev, A. A., Matveev, L. A., Zaitsev, V. Y., Elagin, V. V., Kuznetsov, S. S., Gelikonov, G. V., Ksenofontov, S. Y., Zagaynova, E. V., Feldchtein, F. I., Gladkova, N. D., Vitkin, A.

    Published in Scientific reports (24-04-2019)
    “…Prediction of tumour treatment response may play a crucial role in therapy selection and optimization of its delivery parameters. Here we use optical coherence…”
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    Photodynamic therapy monitoring with optical coherence angiography by Sirotkina, M. A., Matveev, L. A., Shirmanova, M. V., Zaitsev, V. Y., Buyanova, N. L., Elagin, V. V., Gelikonov, G. V., Kuznetsov, S. S., Kiseleva, E. B., Moiseev, A. A., Gamayunov, S. V., Zagaynova, E. V., Feldchtein, F. I., Vitkin, A., Gladkova, N. D.

    Published in Scientific reports (02-02-2017)
    “…Photodynamic therapy (PDT) is a promising modern approach for cancer therapy with low normal tissue toxicity. This study was focused on a vascular-targeting…”
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    A New Method for Motion Artifact Suppression in Spectral-Domain Optical Coherence Tomography by Ksenofontov, S. Yu, Shilyagin, P. A., Terpelov, D. A., Shabanov, D. V., Gelikonov, V. M., Gelikonov, G. V.

    “…A new method for processing spectral-domain optical coherence tomography signals, which is designed to effectively suppress motion artifacts under conditions…”
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  7. 7

    Cross-Polarization Optical Coherence Tomography with Active Maintenance of the Circular Polarization of a Sounding Wave in a Common Path System by Gelikonov, V. M., Romashov, V. N., Shabanov, D. V., Ksenofontov, S. Yu, Terpelov, D. A., Shilyagin, P. A., Gelikonov, G. V., Vitkin, I. A.

    Published in Radiophysics and quantum electronics (01-04-2018)
    “…We consider a cross-polarization optical coherence tomography system with a common path for the sounding and reference waves and active maintenance of the…”
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  8. 8

    A High-Performance Data-Acquisition and Control Module Based on a USB 3.0 Interface for a NIR Broadband Spectrometer by Ksenofontov, S. Yu, Kupaev, A. V., Vasilenkova, T. V., Terpelov, D. A., Shilyagin, P. A., Moiseev, A. A., Gelikonov, G. V.

    “…— The design and principle of operation of the module for data acquisition and control of a broadband near-IR spectrometer are described. It was developed as…”
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  9. 9

    Application of Phase Correction for Compensation of Motion Artifacts in Spectral-Domain Optical Coherence Tomography by Ksenofontov, S. Yu, Shilyagin, P. A., Terpelov, D. A., Novozhilov, A. A., Gelikonov, V. M., Gelikonov, G. V.

    “…— The application of computational methods to correct distortions in spectral-domain optical coherence tomography due to fast probe movements relative to a…”
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  10. 10

    Compensation for the Influence of Fluctuations in the Distance to the Object During Noncontact Probing in Spectral Domain Optical Coherence Tomography by Gelikonov, G. V., Ksenofontov, S. Yu, Shilyagin, P. A., Gelikonov, V. M.

    Published in Radiophysics and quantum electronics (01-08-2019)
    “…We propose and experimentally test a numerical method for correction of the influence of fluctuations in the distance to objects during noncontact probing in…”
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  11. 11

    Calibration of Lateral Scanning in Optical Coherence Tomography Devices by Ksenofontov, S. Yu, Moiseev, A. A., Matkivsky, V. A., Shilyagin, P. A., Vasilenkova, T. V., Gelikonov, V. M., Gelikonov, G. V.

    “…— Methods for determining the dependence of the lateral-scan coordinate on the A-scan number from tomographic images of test samples are investigated and…”
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  12. 12

    A data-acquisition and control system for spectral-domain optical coherence tomography with a speed of 91 912 A-scans/s based on a USB 3.0 interface by Terpelov, D. A., Ksenofontov, S. Yu, Gelikonov, G. V., Gelikonov, V. M., Shilyagin, P. A.

    “…We describe a system of optical spectrum registration at the output of an interferometer with controlled phase shifts for an experimental device intended for…”
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  13. 13

    Equidistant Recording of the Spectral Components in Ultra-Wideband Spectral-Domain Optical Coherence Tomography by Shilyagin, P. A., Ksenofontov, S.Yu, Moiseev, A. A., Terpelov, D. A., Matkivsky, V. A., Kasatkina, I. V., Mamaev, Yu. A., Gelikonov, G. V., Gelikonov, V. M.

    Published in Radiophysics and quantum electronics (01-03-2018)
    “…We develop an effective method for reducing nonequidistance when recording the spectral components of an interference signal in ultra-wideband spectral-domain…”
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  14. 14

    Elimination of Artifacts Caused by the Nonidentity of Parallel Signal-Reception Channels in Spectral Domain Optical Coherence Tomography by Ksenofontov, S. Yu, Terpelov, D. A., Gelikonov, G. V., Shilyagin, P. A., Gelikonov, V. M.

    Published in Radiophysics and quantum electronics (01-07-2019)
    “…We study the causes of artifact appearance in the images obtained by the method of spectral domain optical coherence tomography with parallel reception of the…”
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  15. 15

    In vivo detection of experimentally induced cortical dysgenesis in the adult rat neocortex using optical coherence tomography by Roper, S.N., Moores, M.D., Gelikonov, G.V., Feldchtein, F.I., Beach, N.M., King, M.A., Gelikonov, V.M., Sergeev, A.M., Reitze, D.H.

    Published in Journal of neuroscience methods (13-03-1998)
    “…Imaging cerebral structure in vivo can be accomplished by many methods, including MRI, ultrasound, and computed tomography. Each offers advantages and…”
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  16. 16

    Synchronization of optically coupled neural-like oscillators by Gerasimova, S. A., Gelikonov, G. V., Pisarchik, A. N., Kazantsev, V. B.

    “…An optoelectronic model of synaptically coupled neural oscillators interacting through a fiberoptic communication channel simulating synaptic transmission of…”
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  17. 17

    Recent Trends in Multimodal Optical Coherence Tomography. II. The Correlation-Stability Approach in OCT Elastography and Methods for Visualization of Microcirculation by Zaitsev, V. Yu, Vitkin, I. A., Matveev, L. A., Gelikonov, V. M., Matveyev, A. L., Gelikonov, G. V.

    Published in Radiophysics and quantum electronics (01-08-2014)
    “…The second part of this paper continues the discussion of possibilities for combining functionally different types of biomedical characterization of tissues…”
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    The value of optical coherence tomography and morphometry in evaluating the peripancreatic adipose tissue in infected pancreatic necrosis by Ryabkov, M G, Mokeev, O A, Kiseleva, E B, Shabanov, D V, Gelikonov, V M, Gelikonov, G V, Spiridonov, A A, Bederina, E L, Gladkova, N D, Beschastnov, V V

    Published in Arkhiv patologii (2018)
    “…To investigate the morphometric and optical coherence tomography (OCT) characteristics of the microstructure of retroperitoneal peripancreatic adipose tissue…”
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    Recent Trends in Multimodal Optical Coherence Tomography. I. Polarization-Sensitive OCT and Conventional Approaches to OCT Elastography by Zaitsev, V. Yu, Gelikonov, V. M., Matveev, L. A., Gelikonov, G. V., Matveyev, A. L., Shilyagin, P. A., Vitkin, I. A.

    Published in Radiophysics and quantum electronics (01-06-2014)
    “…We discuss physical principles of obtaining polarization-sensitive images, elastographic mapping and visualization of blood circulation/vasculature in optical…”
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    A New Method for Finding Optical Aberrations on the Basis of Analysis of the Object Hologram Without Additional Measurements by Matkivsky, V. A., Moiseev, A. A., Shilyagin, P. A., Shabanov, D. V., Gelikonov, G. V., Gelikonov, V. M.

    Published in Radiophysics and quantum electronics (01-10-2016)
    “…We propose a new method of compensating for the wavefront aberrations during the image processing. The method employs the digital-holography potential. The…”
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