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1Academic Journal
المؤلفون: Uzunov, N. M., Melendez-Alafort, L., Bello, M., Cicoria, G., Zagni, F., De Nardo, L., Selva, A., Mou, L., Rossi-Alvarez, C., Pupillo, G., Di Domenico, G., Uccelli, L., Boschi, A., Groppi, F., Salvini, A., Taibi, A., Duatti, A., Martini, P., Pasquali, M., Loriggiola, M., Marengo, M., Strada, L., Manenti, S., Rosato, A., Esposito, J.
المساهمون: Uzunov, N. M., Melendez-Alafort, L., Bello, M., Cicoria, G., Zagni, F., De Nardo, L., Selva, A., Mou, L., Rossi-Alvarez, C., Pupillo, G., Di Domenico, G., Uccelli, L., Boschi, A., Groppi, F., Salvini, A., Taibi, A., Duatti, A., Martini, P., Pasquali, M., Loriggiola, M., Marengo, M., Strada, L., Manenti, S., Rosato, A., Esposito, J.
مصطلحات موضوعية: Compton scattering, European pharmacopeia, Image contrast, Image spatial resolution, Radioisotopic purity, Radionuclidic purity, Radiological and Ultrasound Technology, Radiology, Nuclear Medicine and Imaging
وصف الملف: STAMPA
Relation: info:eu-repo/semantics/altIdentifier/pmid/30229740; info:eu-repo/semantics/altIdentifier/wos/WOS:000445113000002; volume:63; issue:18; firstpage:185021; numberofpages:20; journal:PHYSICS IN MEDICINE AND BIOLOGY; http://hdl.handle.net/11577/3286327; info:eu-repo/semantics/altIdentifier/scopus/2-s2.0-85054141596; www.iop.org/Journals/pb
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2Academic Journal
المؤلفون: Р.С. Кочмарчик, R.S. Kochmarchuk
المصدر: Системи озброєння і військова техніка. — 2013. — № 4(36). 70-73 ; Системы вооружения и военная техника. — 2013. — № 4(36). 70-73 ; Systems of Arms and Military Equipment. — 2013. — № 4(36). 70-73 ; 1997-9568
مصطلحات موضوعية: Теоретичні основи розробки систем озброєння, УДК 681.78, многоспектральные оптико-оэлектронные системы, цифровая обработка изображений, восстановление элементов изображений целей, распознавание изображений целей, багатоспектральні оптико-електронні системи, цифрова обробка зображень, підвищення просторової роздільної здатності зображень цілей, розпізнавання зображень цілей, multispectral optical-electronic systems, image digital processing, target image spatial resolution enhancement, target image recognition
وصف الملف: application/pdf
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3Conference
المؤلفون: Vanikiotis T., Stagakis S., Kyparissis A.
المصدر: Proceedings of SPIE - The International Society for Optical Engineering ; https://www.scopus.com/inward/record.uri?eid=2-s2.0-85052709107&doi=10.1117%2f12.2326605&partnerID=40&md5=2aac7171047eed52e7d4574b0246cc10
مصطلحات موضوعية: Ecosystems, Efficiency, Forestry, Image resolution, Photosynthesis, Phytoplankton, Radiometers, Remote sensing, Copernicus Sentinels, Gross primary productivity, High spatial resolution, Image spatial resolution, Light use efficiency, Light-use-efficiency models, MODIS, Photosynthetically active radiation, Satellite imagery, SPIE
Relation: http://hdl.handle.net/11615/80390
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4Academic Journal
المؤلفون: Milillo, Tammy, Miller, Mary Ellen, Montes, Angelina, Gardella, Joseph
المصدر: Michigan Tech Research Institute Publications
مصطلحات موضوعية: Medical image segmentation, Medical image spatial resolution, Data fusion, Spatial resolution, Tissues, Earth Sciences
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5Academic Journal
المؤلفون: Fullenkamp, Steven Charles
المصدر: Browse all Theses and Dissertations
مصطلحات موضوعية: Department of Psychology, Cued Visual Search, Cue and Target Similarity, Image Contrast, Image Size, Image Spatial Resolution, Image Blur, Cue Effectiveness, Cue and Target Characteristics, Search Time, Search Efficiency, Cue, Target, Distractor, Visual Search, Industrial and Organizational Psychology, Psychology, Social and Behavioral Sciences
وصف الملف: application/pdf
Relation: https://corescholar.libraries.wright.edu/etd_all/1155; https://corescholar.libraries.wright.edu/cgi/viewcontent.cgi?article=2294&context=etd_all
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6Academic Journal
المؤلفون: Wang, Hesheng, Cao, Yue
المساهمون: Department of Radiation Oncology, University of Michigan, 1500 East Medical Center Drive, Ann Arbor, Michigan 48109, Department of Radiation Oncology and Radiology, University of Michigan, 1500 East Medical Center Drive, Ann Arbor, Michigan 48109
مصطلحات موضوعية: Cancer, variable flip angles, T1 estimation, total variation, spatial regularization, dual approach, Magnetic resonance imaging, Numerical optimization, biological tissues, biomedical MRI, brain, estimation theory, optimisation, quadratic penalty, Involving electronic [emr] or nuclear [nmr] magnetic resonance, e.g. magnetic resonance imaging, Medical imaging, Medical image noise, Spatial analysis, Iteration theory, Medical image spatial resolution, Medical image contrast, Spatial dimensions, Medicine (General), Health Sciences
وصف الملف: application/pdf
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Wright, “ Rapid high‐resolution T1 mapping by variable flip angles: Accurate and precise measurements in the presence of radiofrequency field inhomogeneity,” Magn. Reson. Med. 55, 566 – 574 ( 2006 ). 10.1002/mrm.20791; J. Velikina, A. L. Alexander, and A. A. Samsonov, “ A novel approach for T1 relaxometry using constrained reconstruction in parametric dimension,” in Proc. of ISMRM 2010, 350 ( 2010 ).; L. C. Chang, C. G. Koay, P. J. Basser, and C. Pierpaoli, “ Linear least‐squares method for unbiased estimation of T1 from SPGR signals,” Magn. Reson. Med. 60, 496 – 501 ( 2008 ). 10.1002/mrm.21669; S. C. Deoni, B. K. Rutt, and T. M. Peters, “ Rapid combined T1 and T2 mapping using gradient recalled acquisition in the steady state,” Magn. Reson. Med. 49, 515 – 526 ( 2003 ). 10.1002/mrm.10407; J. H. Chang, J. M. Anderson, and J. R. Votaw, “ Regularized image reconstruction algorithms for positron emission tomography,” IEEE Trans. Med. 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Pesquet, “ Image restoration subject to a total variation constraint,” IEEE Trans. Image Process. 13, 1213 – 1222 ( 2004 ). 10.1109/TIP.2004.832922; C. Siversson, J. Chan, C. J. Tiderius, T. C. Mamisch, V. Jellus, J. Svensson, and Y. J. Kim, “ Effects of B(1) inhomogeneity correction for three‐dimensional variable flip angle T(1) measurements in hip dGEMRIC at 3 T and 1.5 T,” Magn. Reson. Med. 67, 1776 – 1781 ( 2012 ). 10.1002/mrm.23150
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7Academic Journal
المساهمون: Department of Radiation Oncology, University of Michigan, Ann Arbor, Michigan 48109, Department of Medical Physics in Radiation Oncology, German Cancer Research Center (DKFZ), 69120 Heidelberg, Germany, Clinical Cooperation Unit Radiation Oncology, German Cancer Research Center (DKFZ), 69120 Heidelberg, Germany and Department of Radiation Oncology, University Clinic Heidelberg, 69120 Heidelberg, Germany
مصطلحات موضوعية: Image registration, Dosimetry/exposure assessment, Therapeutic applications, including brachytherapy, Registration, Stochastic processes, deformation, dosimetry, medical image processing, physiological models, pneumodynamics, radiation therapy, fractionated radiation therapy, dose accumulation, dose mapping, b‐spline registration, accuracy, uncertainty, Digital computing or data processing equipment or methods, specially adapted for specific applications, Image data processing or generation, in general, Medical imaging, Computed tomography, Lungs, Numerical modeling, Image guided radiation therapy, Vector fields, Medical image spatial resolution, Medicine (General)
وصف الملف: application/pdf
Relation: Hub, Martina; Thieke, Christian; Kessler, Marc L.; Karger, Christian P. (2012). "A stochastic approach to estimate the uncertainty of dose mapping caused by uncertainties in b‐spline registration." Medical Physics 39(4): 2186-2192.; http://hdl.handle.net/2027.42/134783; Medical Physics; M. Hub, M. L. Kessler, and C. P. Karger, “ A stochastic approach to estimate the uncertainty involved in B‐spline image registration,” IEEE Trans. Med. Imaging 28 ( 11 ), 1708 – 1716 ( 2009 ). 10.1109/TMI.2009.2021063 -->; H. Zhong, E. Weiss, and J. V. Siebers, “ Assessment of dose reconstruction errors in image‐guided radiation therapy,” Phys. Med. Biol. 53 ( 3 ), 719 – 736 ( 2008 ). 10.1088/0031‐9155/53/3/013 -->; F. J. Salguero, N. K. Saleh‐Sayah, C. Y. Yan, and J. V. Siebers, “ Estimation of three‐dimensional intrinsic dosimetric uncertainties resulting from using deformable image registration for dose mapping,” Med. Phys. 38 ( 1 ), 343 – 353 ( 2011 ). 10.1118/1.3528201 -->; E. Rietzel and G. T. Y. Chen, “ Deformable registration of 4D computed tomography data,” Med. Phys. 33, 4423 – 4430 ( 2006 ). 10.1118/1.2361077 -->; E. Heath, D. L. Collins, P. J. Keall, L. Dong, and J. Seuntjens, “ Quantification of accuracy of the automated nonlinear image matching and anatomical labeling (ANIMAL) nonlinear registration algorithm for 4D CT images of lung,” Med. Phys. 34 ( 11 ), 4409 – 4421 ( 2007 ). 10.1118/1.2795824 -->; K. Wijesooriya, E. Weiss, V. Dill, S. Joshi, and P. J. Keall, “ Quantifying the accuracy of automated structure segmentation in 4D CT images using a deformable image registration algorithm,” Med. Phys. 35 ( 4 ), 1251 – 1260 ( 2008 ). 10.1118/1.2839120 -->; J. A. Schnabel, C. Tanner, A. D. Castellano‐Smith, A. Degenhard, M. O. Leach, D. R. Hose, and D. L. G. Hill, “ Validation of nonrigid image registration using finite‐element methods: Application to breast MR images,” IEEE Trans. Med. Imaging 22, 238 – 247 ( 2003 ). 10.1109/TMI.2002.808367 -->; P. Rogelj and S. Kovacic, “ Symmetric image registration,” Med. Image Anal. 10 ( 3 ), 484 – 493 ( 2006 ). 10.1016/j.media.2005.03.003 -->; J. D. Lawson, E. Schreibmann, A. B. Jani, and T. Fox, “ Quantitative evaluation of a cone‐beam computed tomography‐planning computed tomography deformable image registration method for adaptive radiation therapy,” J. Appl. Clin. Med. Phys. 8 ( 4 ), 2432 ( 2007 ). 10.1120/jacmp.v8i4.2432 -->; M. Serban, E. Heath, G. Stroian, D. L. Collins, and J. Seuntjens, “ A deformable phantom for 4D radiotherapy verification: Design and image registration evaluation,” Med Phys. 35 ( 3 ), 1094 – 1102 ( 2008 ). 10.1118/1.2836417 -->; R. Kashani, J. Balter, M. Kessler, M. Hub, L. Dong, L. Zhang, L. Xing, Y. Xie, D. Hawkes, J. Schnabel, J. McClelland, and S. Joshi, “ Objective assessment of deformable image registration in radiotherapy—A multi‐institution study,” 49th AAPM Annual Meeting, Minneapolis, MN, July 22–26 ( 2007 ).; R. Kashani, M. Hub, J. M. Balter, M. L. Kessler, L. Dong, L. F. Zhang, L. Xing, Y. Q. Xie, D. Hawkes, J. A. Schnabel, J. McClelland, S. Joshi, Q. Chen, and W. G. Lu “ Objective assessment of deformable image registration in radiotherapy—A multi‐institution study,” Med. Phys. 35 ( 12 ), 5944 – 5953 ( 2008 ). 10.1118/1.3013563 -->; M. Söhn, M. Birkner, Y. Chi, J. Wang, Y. Di, B. Berger, and M. Alber, “ Model‐independent, multimodality deformable image registration by local matching of anatomical features and minimization of elastic energy,” Med. Phys. 35 ( 3 ), 866 – 878 ( 2008 ). 10.1118/1.2836951 -->; J. Kybic, “ Bootstrap resampling for image registration uncertainty estimation without ground truth,” IEEE Trans. Image Process. 19 ( 1 ), 64 – 73 ( 2010 ). 10.1109/TIP.2009.2030955 -->; R. Floca and H. Dickhaus, “ A flexible registration and evaluation engine (f.r.e.e.),” Comput. Methods Programs Biomed. 87 ( 2 ), 81 – 92 ( 2007 ). 10.1016/j.cmpb.2007.04.009 -->; H. Prüm, L. Gerigk, C. Hintze, C. Thieke, and R. 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8Academic Journal
المؤلفون: Hendee, William R., Banovac, Filip, Carson, Paul L., DeFronzo, Ralph A., Eckelman, William C., Fullerton, Gary D., Larson, Steven M., McLennan, Gordon, Welch, Michael J.
المساهمون: The University of Michigan Medical Center, Ann Arbor, Michigan 48109, Molecular Tracer, LLD, Bethesda, Maryland 20892, Mallinckrodt Institute, St. Louis, Missouri 63110, Georgetown University Hospital, Washington, DC 20007, Indiana University, Indianapolis, Indiana 46202, Memorial Sloan‐Kettering Cancer Center, New York, New York 10021, University of Texas Health Sciences Center, San Antonio, Texas 78201, Medical College of Wisconsin, 8701 Watertown Plank Road, Milwaukee, Wisconsin 53226
مصطلحات موضوعية: Image sensors, rodents, chronic disease, diabetes, image‐guided therapy, Medical imaging, biomedical imaging, drugs, diseases, imaging technology, imaging research, Ultrasonography, Medical X‐ray imaging, Tissues, Medical image quality, Medical image spatial resolution, Image detection systems, Functional monitoring and imaging, Cancer, drug development, Medicine (General), Health Sciences
وصف الملف: application/pdf
Relation: Hendee, William R.; Banovac, Filip; Carson, Paul L.; DeFronzo, Ralph A.; Eckelman, William C.; Fullerton, Gary D.; Larson, Steven M.; McLennan, Gordon; Welch, Michael J. (2007). "Biomedical imaging research opportunities workshop IV: A white paper." Medical Physics 34(2): 673-679.; https://hdl.handle.net/2027.42/134967; Medical Physics; S. Goya Wannamethee et al., “ Overweight and obesity and the burden of disease and disability in elderly men,” Int. J. Obes. Relat. Metab. Disord. 0307‐0565 --> 28, 1374 – 1382 ( 2004 ).; H. Barthel, P. Price, and E. O. Aboagye, “ Small‐animal imaging of tumour proliferation with PET,” Lancet LANCAO --> 0140‐6736 --> 5, 100 ( 2004 ).; J. M. Park and S. S. Gambhir, “ Multimodality radionuclide, fluorescence and bioluminescence small‐animal imaging,” Proc. IEEE IEEPAD --> 0018‐9219 --> 10.1109/JPROC.2005.844263 --> 93, 771 – 783 ( 2005 ).; M. G. Pomper and J. S. Lee, “ Small animal imaging in drug development,” Curr. Pharm. 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9Academic Journal
المؤلفون: Siewerdsen, Jeffrey H.
المساهمون: Department of Radiation Oncology, University of Michigan, Ann Arbor, Michigan 48109‐0010
مصطلحات موضوعية: amorphous semiconductors, elemental semiconductors, silicon, hydrogen, photodiodes, image sensors, diagnostic radiography, biomedical imaging, semiconductor device noise, radiation therapy, 87.56.01.g, Medical imaging, Medical X‐ray imaging, Medical image spatial resolution, Quantum measurement theory, Thin film transistors, Image analysis, Quantum noise, Transistors, Medical image noise, Imaging detectors and sensors, Non‐ionizing radiation equipment and techniques, Radiography, Mammography, Treatment strategy, Medicine (General), Health Sciences
وصف الملف: application/pdf
Relation: Siewerdsen, Jeffrey H. (1998). "Signal, noise, and detective quantum efficiency of a‐Si:H flat‐panel imagers." Medical Physics 25(11): 2250-2250.; https://hdl.handle.net/2027.42/135065; Medical Physics
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10Academic Journal
المؤلفون: Bland, Peyton H., Meyer, Charles R.
المساهمون: Department of Radiology, University of Michigan Hospitals, Ann Arbor, Michigan 48109‐0553
مصطلحات موضوعية: ACCURACY, ALGORITHMS, BRAIN, COMPUTERIZED TOMOGRAPHY, LIVER, MAGNETIC RESONANCE, NEOPLASMS, PHANTOMS, 87.56.05, 87.58.08, Medical image spatial resolution, Magnetic resonance imaging, Medical imaging, Computed tomography, Medical physicists, Anatomy, Spatial analysis, Cancer, Computed radiography, IMAGE ANALYSIS, THREE−DIMENSIONAL SYSTEMS, ABDOMEN, Medicine (General), Health Sciences
وصف الملف: application/pdf
Relation: Bland, Peyton H.; Meyer, Charles R. (1996). "Robust three‐dimensional object definition in CT and MRI." Medical Physics 23(1): 99-107.; http://hdl.handle.net/2027.42/134836; Medical Physics
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11Electronic Resource
Additional Titles: Підвищення достовірності розпізнавання цілей в багатоспектральних оптико-електронних системах повітряної розвідки методом відновлення елементів зображень
The increase of target recognition reliability in multispectral optical-electronic air intelligence systems by the use of images' elements reconstruction methodالمؤلفون: Р.С. Кочмарчик, R.S. Kochmarchuk
المصدر: Системи озброєння і військова техніка. — 2013. — № 4(36). 70-73; Системы вооружения и военная техника. — 2013. — № 4(36). 70-73; Systems of Arms and Military Equipment. — 2013. — № 4(36). 70-73; 1997-9568
مصطلحات الفهرس: Теоретичні основи розробки систем озброєння, УДК 681.78, многоспектральные оптико-оэлектронные системы, цифровая обработка изображений, восстановление элементов изображений целей, распознавание изображений целей, багатоспектральні оптико-електронні системи, цифрова обробка зображень, підвищення просторової роздільної здатності зображень цілей, розпізнавання зображень цілей, multispectral optical-electronic systems, image digital processing, target image spatial resolution enhancement, target image recognition, info:eu-repo/semantics/article, info:eu-repo/semantics/publishedVersion, Рецензована стаття