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Signal, noise power spectrum, and detective quantum efficiency of indirectâ detection flatâ panel imagers for diagnostic radiology

dc.contributor.authorSiewerdsen, J. H.
dc.contributor.authorAntonuk, L. E.
dc.contributor.authorEl‐mohri, Y.
dc.contributor.authorYorkston, J.
dc.contributor.authorHuang, W.
dc.contributor.authorCunningham, I. A.
dc.date.accessioned2017-01-06T20:51:09Z
dc.date.available2017-01-06T20:51:09Z
dc.date.issued1998-05
dc.identifier.citationSiewerdsen, J. H.; Antonuk, L. E.; El‐mohri, Y. ; Yorkston, J.; Huang, W.; Cunningham, I. A. (1998). "Signal, noise power spectrum, and detective quantum efficiency of indirectâ detection flatâ panel imagers for diagnostic radiology." Medical Physics 25(5): 614-628.
dc.identifier.issn0094-2405
dc.identifier.issn2473-4209
dc.identifier.urihttps://hdl.handle.net/2027.42/135120
dc.publisherAmerican Association of Physicists in Medicine
dc.publisherWiley Periodicals, Inc.
dc.subject.otherflat panel displays
dc.subject.otherthin film transistors
dc.subject.otherphotodiodes
dc.subject.other87.56.01.g
dc.subject.other87.56.02
dc.subject.otherFabryâ Perot interferometers
dc.subject.otherMedical imaging
dc.subject.otherMedical image noise
dc.subject.otherRadiography
dc.subject.otherQuantum measurement theory
dc.subject.otherFluoroscopy
dc.subject.otherQuantum noise
dc.subject.otherMatrix theory
dc.subject.otherThin film transistors
dc.subject.otherEnergy efficiency
dc.subject.otherdetective quantum efficiency
dc.subject.otherdigital xâ ray imaging
dc.subject.otherflatâ panel imager
dc.subject.otheramorphous silicon
dc.subject.othernoise power spectrum
dc.subject.othercascaded systems analysis
dc.subject.otherDigital radiography
dc.subject.otherNonâ ionizing radiation equipment and techniques
dc.subject.otherDisplay and recording equipment, oscilloscopes, TV cameras, etc.
dc.subject.otherbiomedical equipment
dc.subject.otherdiagnostic radiography
dc.subject.otherbiomedical electronics
dc.titleSignal, noise power spectrum, and detective quantum efficiency of indirectâ detection flatâ panel imagers for diagnostic radiology
dc.typeArticleen_US
dc.rights.robotsIndexNoFollow
dc.subject.hlbsecondlevelMedicine (General)
dc.subject.hlbtoplevelHealth Sciences
dc.description.peerreviewedPeer Reviewed
dc.contributor.affiliationumDepartment of Radiation Oncology, University of Michigan Medical Center, Ann Arbor, Michigan 48109
dc.contributor.affiliationotherImaging Research Laboratories, The John P. Robarts Research Institute and Department of Diagnostic Radiology, London Health Sciences Centreâ Victoria, and The University of Western Ontario London, Ontario N6A 5K8, Canada
dc.description.bitstreamurlhttp://deepblue.lib.umich.edu/bitstream/2027.42/135120/1/mp8243.pdf
dc.identifier.doi10.1118/1.598243
dc.identifier.sourceMedical Physics
dc.identifier.citedreferenceI. A. Cunningham, M. S. Westmore, and A. Fenster, â A spatialâ frequency dependent quantum accounting diagram and detective quantum efficiency model of signal and noise propagation in cascaded imaging systems,â Med. Phys. MPHYA6 --> 21, 417 â 427 ( 1994 ).
dc.identifier.citedreferenceR. A. Street, Hydrogenated Amorphous Silicon (Cambridge U.P., New York, 1991).
dc.identifier.citedreferenceS. Ross, I. Naday, M. Kanyo, M. L. Westbrook, E. M. Westbrook, W. C. Phillips, M. J. Stanton, and R. A. Street, â Amorphous silicon area detectors for protein crystallography,â Charge Coupled Device and Solid State Optical Sensors V, SPIE PSISDG --> 2415, 1995, 189 â 203.
dc.identifier.citedreferenceL. E. Antonuk, J. Boudry, W. Huang, K. L. Lam, E. J. Morton, R. K. Ten Haken, J. Yorkston, and N. H. Clinthorne, â Thinâ film, flatâ panel, composite imagers for projection and tomographic imaging,â IEEE Trans. Med. Imaging ITMID4 --> 13, 482 â 490 ( 1994 ).
dc.identifier.citedreferenceY. Elâ Mohri, L. E. Antonuk, J. Yorkston, B. A. Fraass, K. Jee, J. H. Siewerdsen, W. Huang, and V. E. Scarpine, â Relative dosimetry using an active matrix flatâ panel imager,â abstract and talk given at the 1996 Annual Meeting of the American Association of Physicists in Medicine, July, 1996.
dc.identifier.citedreferenceL. E. Antonuk, J. Boudry, W. Huang, D. L. McShan, E. J. Morton, J. Yorkston, M. J. Longo, and R. A. Street, â Demonstration of megavoltage and diagnostic xâ ray imaging with hydrogenated amorphous silicon arrays,â Med. Phys. MPHYA6 --> 19, 1455 â 1466 ( 1992 ).
dc.identifier.citedreferenceL. E. Antonuk, J. Yorkston, W. Huang, H. Sandler, J. H. Siewerdsen, and Y. Elâ Mohri, â Megavoltage imaging with a largeâ area, flatâ panel, amorphous silicon imager,â Int. J. Radiat. Oncol., Biol., Phys. IOBPD3 --> 36, 661 â 672 ( 1996 ).
dc.identifier.citedreferenceL. E. Antonuk, Y. Elâ Mohri, J. H. Siewerdsen, J. Yorkston, W. Huang, and V. E. Scarpine, â Empirical investigation of the signal performance of a highâ resolution, indirect detection, active matrix flat panel imager (AMFPI) for diagnostic radiology,â Med. Phys. MPHYA6 --> 24, 51 â 70 ( 1997 ).
dc.identifier.citedreferenceJ. Yorkston, L. E. Antonuk, N. Seraji, W. Huang, J. Siewerdsen, and Y. Elâ Mohri, â Evaluation of the MTF for a â Si:H imaging arrays,â Medical Imaging 1994: Physics of Medical Imaging, SPIE PSISDG --> 2163, 1994, 141 â 148.
dc.identifier.citedreferenceJ. Yorkston, L. E. Antonuk, N. Seraji, W. Huang, J. Siewerdsen, and Y. Elâ Mohri, â MTF measurements with high resolution a â Si:H imaging arrays,â Medical Imaging 1995: Physics of Medical Imaging, SPIE PSISDG --> 2432, 1995, 260 â 269.
dc.identifier.citedreferenceJ. H. Siewerdsen, L. E. Antonuk, Y. Elâ Mohri, J. Yorkston, W. Huang, J. M. Boudry, and I. A. Cunningham, â Empirical and theoretical investigation of of the noise performance of indirect detection, active matrix flatâ panel imagers (AMFPIs) for diagnostic radiology,â Med. Phys. MPHYA6 --> 24, 71 â 89 ( 1997 ).
dc.identifier.citedreferenceE. J. Morton, L. E. Antonuk, J. E. Berry, W. Huang, P. Mody, and J. Yorkston, â A data acquisition system for flatâ panel imaging arrays,â IEEE Trans. Nucl. Sci. IETNAE --> 41, 1150 â 1154 ( 1994 ).
dc.identifier.citedreferenceL. E. Antonuk, J. Boudry, W. Huang, D. L. McShan, E. J. Morton, J. Yorkston, M. J. Longo, and R. A. Street, â Demonstration of megavoltage and diagnostic xâ ray imaging with hydrogenated amorphous silicon arrays,â Med. Phys. MPHYA6 --> 19, 1455 â 1466 ( 1992 ).
dc.identifier.citedreferenceJ. C. Dainty and R. Shaw, Image Science: Principles, Analysis and Evaluation of Photographicâ Type Imaging Processes (Academic, London, 1974).
dc.identifier.citedreferenceM. L. Giger, K. Doi, and C. E. Metz, â Investigation of basic imaging properties in digital radiography. 2. Noise Wiener spectrum,â Med. Phys. MPHYA6 --> 11, 797 â 805 ( 1984 ).
dc.identifier.citedreferenceA. D. A. Maidment and M. J. Yaffe, â Analysis of the spatialâ frequencyâ dependent DQE of optically coupled digital mammography detectors,â Med. Phys. MPHYA6 --> 21, 721 â 729 ( 1994 ).
dc.identifier.citedreferenceJ. T. Dobbins, D. L. Ergun, L. Rutz, D. A. Hinshaw, H. Blume, and D. C. Clark, â DQE ( f ) of four generations of computed radiography acquisition devices,â Med. Phys. MPHYA6 --> 22, 1581 â 1593 ( 1995 ).
dc.identifier.citedreferenceJ. S. Bendat and A. G. Piersol, Random Data: Analysis and Measurement Procedures, 2nd ed. (J Wiley, New York, 1986).
dc.identifier.citedreferenceT. P. Krauss, L. Shure, and J. N. Little, Signal Processing Toolbox, For Use with Matlab (The Math Works, Inc., Natick, MA, 1994).
dc.identifier.citedreferenceR. VanMetter, â Linear systems techniques in imaging science,â talk given at SPIE Physics of Medical Imaging workshop, February, 1996.
dc.identifier.citedreferenceI. A. Cunningham, â Analyzing system performance,â in The Expanding Role of Medical Physics in Diagnostic Imaging, edited by G. D. Frey and P. S. Sprawls (Advanced Medical Publishing, Madison, WI, 1997).
dc.identifier.citedreferenceH. E. Johns and J. R. Cunningham, The Physics of Radiology (Thomas, Springfield, 1983).
dc.identifier.citedreferenceR. Birch, M. Marshall, and G. M. Ardran, â Catalogue of spectral data for diagnostic xâ rays,â Hospital Physicists’ Association, Scientific Report Series 30, 1979, pp. 20â 31.
dc.identifier.citedreferenceM. Rabbani, R. Shaw, and R. Van Metter, â Detective quantum efficiency of imaging systems with amplifying and scattering mechanisms,â J. Opt. Soc. Am. A JOAOD6 --> 4, 895 â 901 ( 1987 ).
dc.identifier.citedreferenceJ. H. Siewerdsen, L. E. Antonuk, and J. Yorkston, â Theoretical performance of amorphous silicon imagers in diagnostic radiology,â Medical Imaging 1996: Physics of Medical Imaging, SPIE PSISDG --> 2708, 1996, 484 â 493.
dc.identifier.citedreferenceI. A. Cunningham, M. S. Westmore, and A. Fenster, â Visual impact of the nonâ zero spatial frequency quantum sink,â in Ref. 8, pp. 274â 283.
dc.identifier.citedreferenceI. A. Cunningham, â Degradation of the detective quantum efficiency due to a nonâ unity detector fill factor,â Medical Imaging 1997: Physics of Medical Imaging, SPIE PSISDG --> 3032, 1997, 22 â 31.
dc.identifier.citedreferenceR. L. Weisfield, R. A. Street, R. Apte, and A. Moore, â An improved pageâ sized 127 μm pixel amorphous silicon image sensor for xâ ray diagnostic medical imaging applications,â in Ref. 27, pp. 14â 21.
dc.identifier.citedreferenceF. G. Rueter, B. J. Conway, J. L. McCrohan, and O. H. Suleiman, â Average radiation exposure values for three diagnostic radiographic examinations,â Radiology RADLAX --> 177, 341 â 345 ( 1990 ).
dc.identifier.citedreferenceJ. M. Boone, D. E. Pfeiffer, K. J. Strauss, R. P. Rossi, P. P. Lin, J. S. Shepard, and B. J. Conway, â A survey of fluoroscopic exposure rates: AAPM task Group No. 11 report,â Med. Phys. MPHYA6 --> 20, 789 â 794 ( 1993 ).
dc.identifier.citedreferenceH. Wieczorek, G. Frings, P. Quadflieg, and U. Schiebel, â CsI:Tl for solid state xâ ray detectors,â Proceedings of the International Conference on Inorganic Scintillators and their Applications, Delft, Netherlands, 1995.
dc.identifier.citedreferenceR. M. Gagne, C. N. West, R. F. Wagner, and P. W. Quinn, â Laboratory measurements of sensitometry, MTF, veiling glare, Wiener spectrum and DQE for image intensifier tubes,â Medical Imaging 1993: Physics of Medical Imaging, SPIE PSISDG --> 1896, 1993, 248 â 258.
dc.identifier.citedreferenceE. Storm and H. I. Israel, â Photon cross sections from 1 keV to 100 MeV for elements Z = 1 to Z = 100,, â Nucl. Data Tables A 7, 565 â 681 ( 1970 ).
dc.identifier.citedreferenceJ. A. Rowlands and K. W. Taylor, â Absorption and noise in cesium iodide xâ ray image intensifiers,â Med. Phys. MPHYA6 --> 10, 786 â 795 ( 1983 ).
dc.identifier.citedreferenceW. Hillen, W. Eckenbach, P. Quadflieg, and P. Zaengel, â Signalâ toâ noise performance in cesium iodide xâ ray fluorescent screens,â Medical Imaging V: Image Physics, SPIE PSISDG --> 1443, 1991, 120 â 131.
dc.identifier.citedreferenceR. K. Swank, â Absorption and noise in xâ ray phosphors,â J. Appl. Phys. JAPIAU --> 44, 4199 â 4203 ( 1973 ).
dc.identifier.citedreferenceL. E. Antonuk, J. H. Siewerdsen, J. Yorkston, and W. Huang, â Radiation response of amorphous silicon imaging arrays at diagnostic energies,â IEEE Trans. Nucl. Sci. IETNAE --> 14, 1500 â 1505 ( 1994 ).
dc.identifier.citedreferenceP. C. Bunch, K. E. Huff, and R. Van Metter, â Analysis of the detective quantum efficiency of a radiographic screenâ film combination,â J. Opt. Soc. Am. A JOAOD6 --> 4, 902 â 909 ( 1987 ).
dc.identifier.citedreferenceR. Shaw, â Quantifying the efficiency of imaging systems: A decade of progress in optimizing screenâ films for xâ ray detection,â in Ref. 9, pp. 2â 11.
dc.identifier.citedreferenceJ. M. Boudry and L. E. Antonuk, â Radiation damage of amorphous silicon photodiode sensors,â IEEE Trans. Nucl. Sci. IETNAE --> 41, 703 â 707 ( 1994 ).
dc.identifier.citedreferenceJ. M. Boudry and L. E. Antonuk, â Radiation damage of amorphous silicon, thinâ film, fieldâ effect transistors,â Med. Phys. MPHYA6 --> 23, 743 â 754 ( 1996 ).
dc.identifier.citedreferenceW. Zhao and J. A. Rowlands, â Xâ ray imaging using amorphous selenium: Feasibility of a flat panel selfâ scanned detector digital radiology,â Med. Phys. MPHYA6 --> 22, 1595 â 1604 ( 1995 ).
dc.identifier.citedreferenceD. L. Lee, L. K. Cheung, and L. S. Jeromin, â A new digital detector for projection radiography,â in Ref. 9, pp. 237â 249.
dc.identifier.citedreferenceK. S. Shah, P. Bennett, M. Klugerman, L. P. Moy, G. Entine, D. Ouimette, and R. Aikens, â Lead iodide films for xâ ray imaging,â in Ref. 27, pp. 395â 404.
dc.identifier.citedreferenceJ. A. Rowlands, W. Zhao, I. Blevis, G. Pang, W. G. Ji, S. Germann, S. O. Kasap, D. Waechter, and Z. Huang, â Flat panel detector for digital radiology using active matrix readout of amorphous selenium,â in Ref. 27, pp. 97â 108.
dc.owningcollnameInterdisciplinary and Peer-Reviewed


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